Lethal endospore. forming bacteria, such as Bacillus anthracis, can be used for bioterrorism. The correct answer is b. endospore.
Lethal endospore-forming bacteria, such as Bacillus anthracis, can be used for bioterrorism. Endospores are specialized dormant structures formed by certain bacteria as a survival mechanism under unfavorable conditions. These endospores are highly resistant to harsh environmental conditions, including extreme temperatures, radiation, and chemical agents. This resilience allows them to persist in the environment for extended periods. Bacillus anthracis, the causative agent of anthrax, is a prime example of a lethal endospore-forming bacterium. The bacteria produce endospores that can survive in soil for years, making it a potential biothreat agent. In bioterrorism scenarios, the endospores can be dispersed in the air, water, or food sources, and when inhaled, ingested, or introduced into the body through wounds, they can cause severe infections and disease.
The presence of the protective endospore coat enables these bacteria to resist the body's immune defenses and survive in various environments. It allows them to persist in the environment and potentially infect individuals who come into contact with contaminated materials. The ability of endospores to resist disinfection measures further enhances their potential as bioterrorism agents. Therefore, the formation of endospores is a crucial factor in the pathogenicity and weaponization potential of certain bacteria, making them significant concerns in bioterrorism preparedness and response efforts. Strategies aimed at detecting, decontaminating, and preventing the dissemination of endospore-forming bacteria are essential for mitigating the risks associated with bioterrorism incidents involving these organisms.
Learn more about endospore here:
https://brainly.com/question/30452291
#SPJ11
You are given the biochemical pathway below. Seven mutant strains (labeled S1 - S7) are defective in this pathway and cannot produce the end product when provided with minimal media. Each mutant strain is defective in only the one step indicated by the path. Select all metabolites that when added to minimal media (one at a time) will allow the mutant strain S4 to produce the end product in the reaction. If none of these metabolites will rescue the mutant strain, select "None of These".
1 2 3 4 5 6 7
Precursor→D→P→M→E→G →C→End Product
Select one or more: None of These
E
M
D
G
C
To allow the mutant strain S4 to produce the end product, we need to identify the metabolites that can bypass the defective step (step 4).
In this case, the defective step is step 4, which means metabolite M is not produced in mutant strain S4. To bypass this step, we need to provide a metabolite that is downstream of step 4 (M) and can directly convert to the end product.
Looking at the pathway, metabolites E, G, and C are downstream of M. Therefore, if any of these metabolites (E, G, or C) are added to the minimal media, it can potentially rescue the mutant strain S4 by providing an alternative pathway to produce the end product.
So, the correct answer is:
- E
- G
- C
To know more about mutant strain click here:
https://brainly.com/question/32670275
#SPJ11
when designing an experiment to determine if a trait is X-linked, what factors need to be considered in terms of the initial parental matings that will be conducted?
When designing an experiment to determine if a trait is X-linked, several factors need to be considered in terms of the initial parental matings. These factors include:
Selection of parental individuals: The choice of parental individuals is crucial. It is important to select individuals with known genotypes for the trait in question. Ideally, one parent should be homozygous for the trait (either affected or unaffected) while the other parent should be homozygous recessive for the trait. Pedigree analysis: A careful analysis of the trait's inheritance pattern in the pedigree can provide valuable information. If the trait shows a clear pattern of segregation along with the sex chromosomes, it suggests an X-linked inheritance. Crosses involving different sexes: To confirm the X-linked inheritance, reciprocal crosses should be performed. This involves mating affected males with unaffected females and vice versa. If the trait is X-linked, the pattern of inheritance will be different depending on the sex of the parent.
learn more about:- Pedigree analysis here
https://brainly.com/question/30189602
#SPJ11
Molecular Biology Genetics
Assignment 1 A cross is made between homozygous wildtype female Drosophila (a+a+, b+b+, c+c+) and homozygous triple-mutant males (aa, bb, cc). The F1 females are testcrossed back to the triple-mutant males and the F2 phenotypic ratios are as follows: a+ b c ----------- 18
a b+ c ------------ 112
abc ----------------308 a+b+ C ----------- 66 abc+ -------------- 59 a+b+c+----------- 321 a+ b c+ ---------- 102 a b+c+ ----------- 15 Total 1000 1. What would be the genotype of the F1 generation? 2. What is the percentage of the parental and the recombinant individuals in F2? 3. Calculate the distance between the three alleles a, b, and c 4. Compare the genetic distance deduced from the three-point cross and is this calculation accurate and if not, propose a solution to correct it? Draw a small map to show the order of the genes.
The genotype of the F1 generation is: a+b+c+. Gene a is located between genes b and c in the Drosophila genome.
The genotype of the F1 generation can be deduced from the phenotypic ratios observed in the F2 generation. From the F2 phenotypic ratios, we can determine which alleles were present in the F1 females. Looking at the F2 phenotypic ratios, we can see that the highest frequency is observed for the abc phenotype, which indicates that the F1 females were heterozygous for all three genes. Therefore, the genotype of the F1 generation is: a+b+c+.
To determine the percentage of parental and recombinant individuals in the F2 generation, we need to consider the phenotypic ratios provided.
Parental individuals have the same phenotype as one of the parents, while recombinant individuals have a different combination of alleles. From the F2 phenotypic ratios, we can identify the parental and recombinant categories as follows:
Paretal individuals: a+ b c, abc+, a+b+ C
Recombinant individuals: 18a b+ c, 112abc, a+ b c+, a b+c+
To calculate the percentage, divide the count of each category by the total (1000) and multiply by 100.
To calculate the genetic distance between the three alleles (a, b, and c), we need to determine the frequency of recombinant individuals in the F2 generation. In this case, the recombinant individuals are: 18a b+ c, 112abc, a+ b c+, a b+c+.
Add up the frequencies of these four recombinant phenotypes (18 + 112 + 59 + 15 = 204). Divide this by the total number of individuals in the F2 generation (1000) and multiply by 100 to get the percentage of recombinant individuals (20.4%).
The genetic distance deduced from the three-point cross may not be entirely accurate due to the assumption of no double crossovers. In a three-point cross, double crossovers can occur between two genes, leading to incorrect determination of the order and distance between genes.
To correct for the potential occurrence of double crossovers, a four-point cross can be performed. A four-point cross involves including an additional gene to determine the order and distances between all three genes accurately. By analyzing the recombinant phenotypes in the F2 generation of the four-point cross, a more precise genetic map can be constructed.
Unfortunately, as a text-based AI, I am unable to draw a small map to show the order of the genes. However, you can represent the gene order as follows:
a - b - c
This indicates that gene a is located between genes b and c in the Drosophila genome.
Learn more about genotype here:
https://brainly.com/question/30784786
#SPJ11
Relate Gibbs free energy to the direction of a reaction in a cell
assisted by enzyme how can a cell control the direction of a
reaction?
Gibbs free energy is a measure of the amount of energy in a system that is available to do useful work, such as driving a chemical reaction. In the context of a cell, enzymes are proteins that catalyze, or speed up, chemical reactions.
These reactions are essential for cellular processes such as metabolism, energy production, and DNA replication .The direction of a reaction in a cell is determined by the Gibbs free energy change (ΔG) of the reaction. If ΔG is negative, the reaction is exergonic, meaning it releases energy and proceeds spontaneously in the forward direction. If ΔG is positive, the reaction is endergonic, meaning it requires an input of energy and proceeds spontaneously in the reverse direction. However, the direction of a reaction in a cell is not solely determined by the thermodynamics of the reaction.
Enzymes can also influence the direction of a reaction by lowering the activation energy required for the reaction to occur. This can allow a thermodynamically unfavorable reaction to proceed by reducing the energy barrier that the reactants must overcome. To control the direction of a reaction, cells can regulate the activity of enzymes. This can be done by controlling the expression of genes that encode for enzymes or by post-transcriptional or post-translational modifications of the enzymes themselves. Additionally, cells can control the concentration of reactants and products in the cell to shift the equilibrium of the reaction in the desired direction. Overall, the direction of a reaction in a cell is determined by both the thermodynamics of the reaction and the activity of enzymes.
To know more about chemical reactions visit:
brainly.com/question/18671493
#SPJ11
What part of the DNA gets labeled in the meselson and stahl
experiment?
The DNA in the meselson and stahl experiment that gets labeled is the nitrogenous bases.
In the Meselson and Stahl experiment, the DNA that gets labeled is the nitrogenous bases. The experiment was conducted to determine the mode of DNA replication, specifically whether it followed the conservative, semi-conservative, or dispersive model.
To label the DNA, they used isotopes of nitrogen, specifically N-14 and N-15, which can be distinguished based on their atomic weight. In the experiment, E. coli bacteria were grown in a medium containing either N-14 or N-15 as the nitrogen source.
After multiple generations of replication, DNA samples were extracted and subjected to centrifugation. By comparing the density distribution of the DNA in the centrifuge tubes, they could determine the mode of replication.
The results showed that the DNA had an intermediate density, indicating a semi-conservative mode of replication, where each newly synthesized DNA strand consists of one original (labeled) strand and one newly synthesized (unlabeled) strand.
Therefore, it is the nitrogenous bases of the DNA that get labeled in the Meselson and Stahl experiment.
To know more about "DNA" refer here:
https://brainly.com/question/1000326#
#SPJ11
what biological molecules in chloroplasts are responsible for absorbing the sun’s visible light spectrum? Which portions of the spectrum do they absorb the best. Which section(s) the least?
Chlorophyll molecules are the biological molecules in chloroplasts that are responsible for absorbing the sun's visible light spectrum. Chlorophyll is a green pigment that is responsible for the green color of leaves. The structure of chlorophyll is based on a ring structure called a porphyrin ring, which is similar to the heme group found in hemoglobin.
Chlorophyll is the primary molecule that absorbs light in the process of photosynthesis, converting light energy into chemical energy. The two types of chlorophyll found in chloroplasts are chlorophyll a and chlorophyll b. Chlorophyll a absorbs light most effectively in the blue-violet and red regions of the spectrum, while chlorophyll b absorbs light most effectively in the blue and orange regions of the spectrum. Together, these pigments are able to absorb light across most of the visible spectrum, with the exception of the green portion of the spectrum, which is reflected, giving leaves their characteristic green color.
To knosw more about porphyrin visit:
https://brainly.com/question/31941671
#SPJ11
Do peptide bonds covalently link protein subunits together?
a. No, peptide bonds link amino acids together in a single polypeptide chain. b. No, peptide bonds are required to link DNA and DNA polymerase together during translation
c. No, peptide bonds are required to link DNA and DNA polymerase together during transcription d. Yes, peptide bonds link protein subunits together in quatemary structures
e. Yes, peptide bonds create inter-strand linkage so the protein will form the proper tertiary structure
Peptide bonds are not responsible for linking protein subunits together in the quaternary structure, The correct statement is a). No, peptide bonds link amino acids together in a single polypeptide chain.
Peptide bonds are covalent bonds that form between the carboxyl group of one amino acid and the amino group of another amino acid. They create a linkage between adjacent amino acids within a polypeptide chain, resulting in the formation of a linear sequence of amino acids. This process is known as peptide bond formation or peptide bond synthesis.
Protein subunits, on the other hand, are typically linked together through other types of interactions such as noncovalent bonds, such as hydrogen bonds, electrostatic interactions, and hydrophobic interactions. These interactions contribute to the higher-order structure of proteins, including the quaternary structure when multiple protein subunits come together to form a functional protein complex.
Learn more about protein subunits here
https://brainly.com/question/28461605
#SPJ11
Each chromosome has its own particular (or, its own location) inside a nucleus.
Each chromosome has its own specific location inside the nucleus.
The location of a chromosome within the nucleus is dependent on its size and shape.
The nucleus is the site of genetic material in the eukaryotic cell.
The eukaryotic cell has a variety of cellular structures.
The most prominent structure in eukaryotic cells is the nucleus.
It serves as the site for genetic material and is surrounded by a double membrane known as the nuclear envelope. The nucleus contains chromosomes that hold genetic material.
Chromosomes are thread-like structures that carry genetic information within a cell.
Chromosomes are made up of DNA molecules that contain genes.
Humans have 23 pairs of chromosomes, or 46 chromosomes in total.
To know more about chromosome visit:
https://brainly.com/question/30077641
#SPJ11
4. Describe DNA synthesis in: a) Prokaryotes b) Eukaryotes Include in your discussion DNA initiation, elongation and termination. 5. Describe the key stages in homologous recombination. 6. Discuss the different types of the DNA damage and how they are repaired. 7. Provide a detailed outline of DNA-dependent RNA synthesis in prokaryotes. 8. Discuss the main differences between DNA polymerase and RNA polymerase. 9. Discuss the main modifications that a newly synthesized pre-mRNA molecule will undergo before it can be referred to as a mature mRNA? 10. With reference to translation, short notes on the following: a) Protein post-translational modification b) The role of rRNA during translation c) tRNA structure
4. DNA synthesis in Prokaryotes and Eukaryotes:
a) Prokaryotes:
- DNA initiation: In prokaryotes, DNA synthesis is initiated at a specific site called the origin of replication (ori). Initiator proteins bind to the ori and recruit other proteins, including helicase, which unwinds the double-stranded DNA to create a replication fork.
- DNA elongation: DNA polymerase III, the main enzyme involved in DNA replication in prokaryotes, adds nucleotides to the growing DNA strand in a 5' to 3' direction. One strand, called the leading strand, is synthesized continuously, while the other strand, called the lagging strand, is synthesized discontinuously in short fragments called Okazaki fragments.
- Termination: The termination of DNA synthesis in prokaryotes involves the termination site, which is recognized by specific proteins. These proteins disrupt the replication complex and lead to the dissociation of the DNA polymerase from the DNA template.
b) Eukaryotes:
- DNA initiation: In eukaryotes, DNA replication occurs at multiple origins of replication scattered throughout the genome. Initiator proteins, along with other factors, bind to the origins and initiate the unwinding of DNA to form replication forks.
- DNA elongation: DNA polymerases α, δ, and ε are involved in DNA replication in eukaryotes. DNA polymerase α initiates DNA synthesis by adding a short RNA primer, which is later replaced by DNA synthesized by DNA polymerase δ and ε. The leading and lagging strands are synthesized as in prokaryotes.
- Termination: The termination of DNA replication in eukaryotes is a complex process that involves replication forks from adjacent replication origins merging together and the completion of DNA synthesis by DNA polymerases. Telomeres, the protective caps at the ends of chromosomes, also play a role in termination.
5. Key stages in homologous recombination:
- DNA double-strand break formation: A double-strand break occurs in one of the DNA molecules, usually caused by external factors or replication errors.
- Resection: The broken DNA ends are processed to generate single-stranded DNA (ssDNA) tails.
- Strand invasion: The ssDNA tails invade the intact DNA molecule with homologous sequences, forming a displacement loop (D-loop) structure.
- DNA synthesis and branch migration: DNA synthesis occurs, using the intact DNA molecule as a template. This results in the exchange of genetic information between the two DNA molecules. Branch migration refers to the movement of the D-loop along the DNA molecule.
6. Types of DNA damage and repair:
- Base excision repair (BER): Repairs damaged or abnormal bases, such as those modified by oxidation or methylation. A specific DNA glycosylase recognizes the damaged base and removes it, followed by the action of other enzymes to complete the repair process.
- Nucleotide excision repair (NER): Repairs a wide range of DNA lesions, including UV-induced pyrimidine dimers and bulky chemical adducts. It involves the recognition and removal of a segment of damaged DNA, followed by DNA synthesis and ligation to restore the original DNA sequence.
- Mismatch repair (MMR): Corrects errors that occur during DNA replication, such as mismatches and small insertions/deletions. MMR detects and removes the mismatched base, and the gap is filled by DNA synthesis and ligation.
- Homologous recombination repair (HRR): Repairs double-str
and breaks using the undamaged sister chromatid as a template. It involves the stages mentioned earlier, including strand invasion, DNA synthesis, and resolution of the Holliday junction.
7. DNA-dependent RNA synthesis in prokaryotes:
In prokaryotes, DNA-dependent RNA synthesis, or transcription, involves the following steps:
- Initiation: The RNA polymerase binds to the promoter region of the DNA, forming a closed complex. It then unwinds the DNA to form an open complex, allowing the template strand to be exposed.
- Elongation: The RNA polymerase moves along the DNA template strand in a 3' to 5' direction, synthesizing an RNA molecule in a complementary 5' to 3' direction. The DNA double helix re-forms behind the RNA polymerase.
8. Differences between DNA polymerase and RNA polymerase:
- Substrate specificity: DNA polymerase uses deoxyribonucleotide triphosphates (dNTPs) as substrates to synthesize DNA, while RNA polymerase uses ribonucleotide triphosphates (NTPs) to synthesize RNA.
- Template recognition: DNA polymerase requires a DNA template for synthesis, while RNA polymerase requires a DNA template for transcription.
- Proofreading activity: DNA polymerase has proofreading activity and can correct errors during DNA synthesis, while RNA polymerase lacks proofreading activity, leading to a higher error rate in RNA synthesis.
To know more about DNA visit:
brainly.com/question/30006059
#SPJ11
2.which of the following statements about glycolysis is wrong?
All the intermediates in glycolysis are phosphorylated
The sugar is phosphorylated twice during the preparation phase and both times the phosphate donor is an ATP
All the ATP molecules generated during the payoff phase are through substrate-level phosphorylation
The total energy yield from glycolysis is 2 Atp per glucose (4 ATP from the payoff phase - 2 ATp during the preparation phase), all things considered.
a. What metabolic fate(s) exist for glucose-6-phosphate?
(Check All That Apply)
It can enter the pentose phosphate pathway.
It can be used to synthesize glycogen.
It can be broken down through glycolysis.
The phosphate can be removed so that the sugar can be released into the bloodstream
b. What metabolic fate(s) exist for fructose-1,6-bisphosphate?
(Check All That Apply)
It can enter the pentose phosphate pathway.
It can be used to synthesize glycogen.
It can be broken down through glycolysis.
The phosphate can be removed so that the sugar can be released into the bloodstream
The incorrect statement about glycolysis is that all the ATP molecules generated during the payoff phase are through substrate-level phosphorylation.
The correct statement is that one ATP molecule is generated through substrate-level phosphorylation, while the remaining two ATP molecules are generated through oxidative phosphorylation.
The incorrect statement in the given options is that all the ATP molecules generated during the payoff phase of glycolysis are through substrate-level phosphorylation.
Substrate-level phosphorylation refers to the direct transfer of a phosphate group from a high-energy molecule to ADP to form ATP. However, in glycolysis, the final step of the pathway involves the conversion of phosphoenolpyruvate (PEP) to pyruvate, which generates one ATP molecule through substrate-level phosphorylation.
The other two ATP molecules in the payoff phase are produced through oxidative phosphorylation, where the high-energy electrons generated during glycolysis are transferred to the electron transport chain in the mitochondria, leading to the synthesis of ATP.
Regarding the metabolic fates of glucose-6-phosphate, it can undergo multiple pathways. It can enter the pentose phosphate pathway, where it is converted to ribose-5-phosphate, a precursor for nucleotide synthesis, or it can generate NADPH, an important reducing agent.
Glucose-6-phosphate can also be used to synthesize glycogen through the process of glycogenesis. Additionally, it can be further metabolized through glycolysis to generate energy.
The phosphate group attached to glucose-6-phosphate can also be removed by enzymes, allowing the release of glucose into the bloodstream.
As for fructose-1,6-bisphosphate, its metabolic fates include entering the pentose phosphate pathway, where it can be used to generate ribose-5-phosphate or NADPH.
It can also be utilized for glycogen synthesis through glycogenesis. Moreover, fructose-1,6-bisphosphate serves as a key intermediate in glycolysis and is broken down further to generate energy.
The phosphate group can be removed, leading to the release of fructose into the bloodstream. In summary, the incorrect statement is that all ATP molecules generated during the payoff phase of glycolysis are through substrate-level phosphorylation.
In reality, only one ATP molecule is produced through substrate-level phosphorylation, while the other two ATP molecules are generated through oxidative phosphorylation.
Glucose-6-phosphate can enter the pentose phosphate pathway, synthesize glycogen, undergo glycolysis, or have its phosphate group removed for the release of glucose.
Fructose-1,6-bisphosphate can enter the pentose phosphate pathway, be used for glycogen synthesis, undergo glycolysis, or have its phosphate group removed for the release of fructose.
Learn more about glycolysis here ;
https://brainly.com/question/26990754
#SPJ11
Question 9 1 pts Calculate the mechanical efficiency (%) of a bout of cycling exercise wherein the mechanical work output on the cycle ergometer is 105 kcal and the energy input (human energy expendit
If the mechanical work output on the cycle ergometer is 105 kcal, then the mechanical efficiency is 23.0%. So, option A is accurate.
To calculate the mechanical efficiency, we can use the formula:
Mechanical Efficiency (%) = (Work Output / Energy Input) * 100
Given:
Work Output = 105 kcal
Energy Input = 450 kcal
Plugging in the values into the formula:
Mechanical Efficiency (%) = (105 / 450) * 100
Calculating the value:
Mechanical Efficiency (%) = 0.2333 * 100
Mechanical Efficiency (%) = 23.33%
Rounding to the nearest decimal place, the mechanical efficiency is approximately 23.3%.
To know more about mechanical efficiency
brainly.com/question/1279216
#SPJ11
The complete question is:
Calculate the mechanical efficiency (%) of a bout of cycling exercise wherein the mechanical work output on the cycle ergometer is 105 kcal and the energy input (human energy expenditure during the exercise) is 450 kcal.
a) 23.0%
b) 42.86%
c) 20.3%
d) 26.3%
Peripheral Nervous System (PNS): describe the structural/anatomical arrangement and functional characteristics of the following subdivisions/modalities of the PNS-SS, SM, VS, VM ANS (= VM): describe the structural/anatomical arrangement and functional characteristics of the two subdivisions of visceromotor innervation. Use a simple diagram to illustrate your answer. • Cranial nerves: know by name and number and be able to describe the respective targets/effectors of each Discuss the evolution of spinal nerves from hypothetical vertebrate ancestor to the mammalian condition It has been argued that the pattern of cranial nerves may represent the ancestral vertebrate pattern of anterior spinal nerve organization. Be able to provide a coherent argument supporting this statement using position and modality of representative cranial nerves as evidence. Also, ILLUSTRATE it with a simple labeled cartoon of the putative pre-cephalized proto- vertebrate ancestral form that demonstrates the arrangement of key structures (i.e., somites, pharyngeal slits, appropriate segmental nerves) in the head end of this hypothetical ancestor.
Sensory and motor nerves that are not part of the central nervous system make up the peripheral nervous system (PNS).
It is possible to separate the PNS into several functional modes. The somatic motor (SM) division controls voluntary contraction of skeletal muscles, while the somatic sensory (SS) division relays sensory information from the body surface.
Internal organ sensory information is transmitted through the visceral sensory (VS) division, while the autonomic nervous system (ANS) controls uncontrollable processes. The sympathetic division (SD) of the autonomic nervous system (ANS) prepares the body for stress responses, while the parasympathetic division (PD) encourages digestion and rest. The head and neck region is innervated by the cranial nerves, which represent the basic architecture of the neural organization of the anterior spinal cord of vertebrates.
Learn more about Motor nerves, here:
https://brainly.com/question/32874972
#SPJ4
A culture of Escherichia coli has a doubling time of 20 minutes in a defined medium and is prepared to an initial cell concentration of 0.5 x 10' cells/mL in in that medium. (1) Catulate the cell density after a 3.5 hours incubation period. (2) Calculate the number of generations that the cells have multiplied during the incubation period.
The cell density after a 3.5 hours incubation period is 5.16 x 10⁸ cells/mL, and the number of generations that the cells have multiplied during the incubation period is approximately 10.5 generations.
(1) Calculation of cell density after a 3.5 hours incubation period
It has been given that the doubling time of Escherichia coli is 20 minutes in a defined medium, and the initial cell concentration is 0.5 x 10⁶ cells/mL.
Now, we need to find the cell density after a 3.5 hours incubation period.
To calculate the cell density after a certain time, we use the following formula:
Nt = N₀ x 2ⁿ
Where,Nt = the number of cells at time t
N₀ = the initial number of cells
n = the number of generations in the time interval (t)
Since the given time interval is in hours and the doubling time is in minutes, we need to convert the time interval to minutes.
3.5 hours = 3.5 × 60 minutes
= 210 minutes
n = (210 minutes) / (20 minutes/generation)
= 10.5 generations (approx.)
Therefore,
Nt = N₀ x 2ⁿ
= (0.5 x 10⁶ cells/mL) x 2¹⁰.⁵
= 0.5 x 10⁶ x 1031
= 5.16 x 10⁸ cells/mL
So, the cell density after a 3.5 hours incubation period is 5.16 x 10⁸ cells/mL.
(2) Calculation of the number of generations that the cells have multiplied during the incubation period.
From the above calculation, we have found that the number of generations (n) during the 3.5 hours incubation period is approximately 10.5 generations.
Therefore, the cells have multiplied 10.5 times (approx.) during the incubation period.
To know more about incubation period, visit:
https://brainly.com/question/31720011
#SPJ11
Restylem Plants and animals both respire. Compare and contrast the pathway of oxygen (O2) through the organism from the outside air to the cell in which it is being used trace thatpathione animal of your choice and in one plant
Respiration is a biological process in which the body acquires energy through the oxidation of glucose or nutrients, resulting in the production of carbon dioxide and water as by-products.
Respiration occurs in both animals and plants. Oxygen (O2) from the air is required for respiration to occur. Oxygen is used by organisms to convert food into energy that can be used to power all of their physiological activities, including cellular respiration.Animals and plants both respire, but they have different respiratory systems and mechanisms for obtaining oxygen.
Here are the different paths that oxygen takes through an animal and a plant:Path of oxygen in an animal:In animals, oxygen is inhaled through the nose or mouth. The oxygen travels down the trachea (windpipe), which is then divided into bronchi and bronchioles that transport air to the lungs.
To know more about Respiration visit:
https://brainly.com/question/18024346
#SPJ11
A species has been transplanted to a region of the world where historically it did not exist. It spreads rapidly and is highly detrimental to native species and to human economies. This is known as a(n) introduced species. exotic species. invasive species. non-native species. 0/1 point Plant alkaloids act as chemical defense against herbivory because they are toxic to herbivores. are difficult for herbivores to digest. make the plant unpalatable. are difficult to consume. 0/1 point
The correct term for a species that has been transplanted to a region where it historically did not exist and spreads rapidly, causing harm to native species and human economies, is an invasive species.
As for the question about plant alkaloids, they act as chemical defense against herbivory because they are toxic to herbivores. Plant alkaloids are secondary metabolites produced by plants to deter herbivores from feeding on them.
They can be toxic or poisonous to herbivores, causing physiological effects or even death. This toxicity serves as a defense mechanism, deterring herbivores from consuming the plant and reducing the damage inflicted upon it.
To know more about invasive species refer to-
https://brainly.com/question/12547595
#SPJ11
Which of the following is true about glycosylated plasma membrane proteins? a) N-linked sugars are linked to the amino group of asparagine residue. b) Only one specific site is glycosylated on each protein. c) The sugar usually is monosaccharide. d) Sugar group is added only when the protein is present in the cytoplasm. e) none of the above.
Glycosylated plasma membrane proteins are modified proteins found in the cell membrane. These proteins are found in both eukaryotic and prokaryotic cells and are responsible for a variety of functions such as cell adhesion and signaling, among others.
The true statement about glycosylated plasma membrane proteins are as follows:a) N-linked sugars are linked to the amino group of asparagine residue. - This statement is true because N-linked sugars are linked to the amino group of asparagine residue. b) Only one specific site is glycosylated on each protein. However, certain proteins have specific glycosylation sites that are essential for their function. c) The sugar usually is monosaccharide. - This statement is false because the sugar that is added to the protein can be a monosaccharide or an oligosaccharide.
The exact sugar depends on the type of protein and the organism. d) Sugar group is added only when the protein is present in the cytoplasm. - This statement is false because the sugar group is added in the endoplasmic reticulum (ER) as a precursor to the protein. It is then modified further in the Golgi apparatus before being transported to the cell membrane. e) None of the above. - The true statement is a) N-linked sugars are linked to the amino group of asparagine residue.
To know more about Glycosylated visit:-
https://brainly.com/question/31825269
#SPJ11
Question 2: To study the therapeutic impact of pet ownership on heart attack recovery, physicians determined which heart-attack patients had a pet, then looked at their one survival. 85% with pets were still alive, compared to 63% of those without pets.
Is this an experimental or observational study?
Is there a true comparison group?
Were there other possible confounding variables?
What would be the most accurate way to run this experiment?
This is an observational study. The comparison group consists of heart attack patients without pets. Possible confounding variables include age, overall health, and access to healthcare.
The most accurate way to run this experiment would be to randomly assign heart attack patients to either a pet ownership group or a non-pet ownership group, ensuring that both groups are similar in terms of confounding variables, and then comparing their survival rates.
This study is an observational study because the researchers did not actively intervene or manipulate variables. They observed and compared the outcomes of heart attack patients based on whether they owned a pet or not. The comparison group in this study consists of heart attack patients without pets.
There could be other confounding variables that could influence the results, such as age, overall health, and access to healthcare. These factors may be related to both pet ownership and survival rates, making it difficult to determine if pet ownership alone is the cause of the higher survival rate.
To conduct a more accurate experiment, researchers could use a randomized controlled trial (RCT) approach. They could randomly assign heart attack patients to two groups: one with pet ownership and one without. By randomizing the assignment, the groups would be more likely to be similar in terms of confounding variables. Then, they can compare the survival rates of the two groups, providing stronger evidence for the impact of pet ownership on heart attack recovery.
Learn more about patients here:
https://brainly.com/question/30615544
#SPJ11
For each of the following studies indicate whether the results are more likely to be to be due to a spurious or non-causal association or a causal association.
In 1-3 sentences each, explain the reasoning behind your answer using the nine guidelines for judging whether an observed association is causal. You do not need to go through each guideline for each study but select and discuss those that are most relevant to your response.
a. A case-control study found that there was a moderate to strong association between caffeine consumption and death from liver cancer. Other studies have shown that those who drink coffee are more likely to smoke than those who do not drink coffee.
b. A randomized controlled trial showed that consistent phototherapy (light therapy) significantly reduced the adverse effects of Seasonal Affective Disorder among Scandinavian males. This finding was confirmed in subsequent studies.
c. A large epidemiologic study examined the possible association between 20 lifestyle behaviors and teen pregnancy. The study found a significant positive relationship between seatbelt use and teen pregnancy that had not been previously reported in an epi study.
a. The association between caffeine consumption and death from liver cancer is more likely to be a spurious or non-causal association. The presence of confounding factors, such as smoking, suggests that the observed association may be explained by a common risk factor rather than a direct causal relationship.
b. The association between phototherapy and reduction of adverse effects in Seasonal Affective Disorder is more likely to be a causal association. The use of a randomized controlled trial design and the confirmation of findings in subsequent studies provide strong evidence for a direct causal relationship.
c. The positive relationship between seatbelt use and teen pregnancy found in the large epidemiologic study is more likely to be a spurious or non-causal association. The lack of previous reporting of such an association, along with the possibility of confounding factors or bias, suggests that the observed association may be due to other factors rather than a direct causal relationship.
In assessing the likelihood of causal associations, several guidelines can be considered. In the case of caffeine consumption and death from liver cancer (a), the presence of confounding factors (such as smoking) indicates that the observed association may be due to a common risk factor (e.g., lifestyle choices) rather than a direct causal relationship. This suggests a spurious or non-causal association.
In contrast, the randomized controlled trial on phototherapy and Seasonal Affective Disorder (b) provides strong evidence for a causal association. The use of a randomized design helps minimize confounding and bias, and the confirmation of the findings in subsequent studies adds to the robustness of the evidence.
Regarding the association between seatbelt use and teen pregnancy (c), the unexpected nature of the relationship and the lack of previous reporting suggest that the observed association may be spurious or non-causal. Confounding factors, such as age or socioeconomic status, might influence both seatbelt use and teen pregnancy rates, leading to a misleading association.
Overall, considering the presence of confounding factors, study design, consistency of findings, and the plausibility of a causal relationship can help determine whether an observed association is more likely to be causal or spurious.
Learn more about pregnancy rates here:
https://brainly.com/question/30722361
#SPJ11
Traits such as height and skin colour are controlled by than one gene. In polygenic inheritance, several genes play a role in the expression of a trait. A couple (Black male and White female) came together and had children. They carried the following alleles, male (AABB) and female (aabb). Question 11: With a Punnet square, work out the phenotypic and genotypic ratios F1 generation of this cross (Click picture icon and upload) Phenotype ratio: Click or tap here to enter text. Genotype ratio: Click or tap here to enter text. Question 12: Take two individuals from F1 generation and let them cross. Work out the phenotypic and genotypic ratios of the F2 generation by making use of a Punnet square (Click picture icon and upload)
Given A black male (AABB) and a white female (aabb) came together and had children. The question is to work out the phenotypic and genotypic ratios of F1 and F2 generations using Punnet square.
Working:
F1 generation:Given:A black male (AABB) and a white female (aabb) had children and each child carried two alleles from each parent.Hence, the gametes produced by the Black male are AB and the gametes produced by White female are ab.Using the Punnet square method, we get:F1 generationAB Ab aB abAB AABB AABb AaBB AaBbAb AABb Aabb AaBb AabbF1 generation genotypic ratio: 1:2:1:2:4 (AABB:AABb:AaBB:AaBb:aabb)F1 generation phenotypic ratio: 1:2:1 (Black:African American:White)Hence, the phenotypic ratio is 1:2:1 and the genotypic ratio is 1:2:1:2:4 (AABB:AABb:AaBB:AaBb:aabb).F2 generation:
Given: Two individuals from F1 generation (AABb) are crossed and the gametes produced are AB, Ab, aB and ab.Using the Punnet square method, we get:F2 generationA aB Ab abA AA Aa Aa aaB Aa BB Bb bbA Aa Bb AB AbF2 generation genotypic ratio: 1:2:1:2:4:2:4:2:1F2 generation phenotypic ratio: 9:3:4 (Black:African American:White)Hence, the phenotypic ratio is 9:3:4 and the genotypic ratio is 1:2:1:2:4:2:4:2:1.About GenotypicGenotypic is a term used to describe the genetic state of an individual or a group of individuals in a population. Genotype can refer to the genetic state of a locus or the entire genetic material carried by chromosomes. The genotype can be either homozygous or heterozygous.
Learn More About Genotypic at https://brainly.com/question/22108809
#SPJ11
Which statement regarding the absorption of lipid is true? triglyceride are absorbed into the circulatory system directly from the small intestine fatty acid and glycerol enter the intestinal cell in the form of chylomicron lipids are absorbed only in the ileum of the small intestine bile help transport lipids into the blood stream fatty acid and glycerol enter the intestinal cells in the form of micelle
The statement "fatty acid and glycerol enter the intestinal cells in the form of micelle" is true.
During lipid absorption, the breakdown products of triglycerides (fatty acids and glycerol) are absorbed by the small intestine. However, due to their hydrophobic nature, they cannot dissolve freely in the watery environment of the intestine. To facilitate their absorption, they combine with bile salts to form micelles. Bile salts are produced by the liver and stored in the gallbladder, and they aid in the digestion and absorption of dietary fats.
These micelles, consisting of fatty acids, glycerol, and bile salts, help solubilize the lipids and transport them to the surface of the intestinal cells (enterocytes). The fatty acids and glycerol then diffuse across the cell membrane and enter the enterocytes. Once inside the enterocytes, they are reassembled into triglycerides.
After reassembly, the triglycerides combine with other lipids and proteins to form chylomicrons. Chylomicrons are large lipoprotein particles that transport the dietary lipids through the lymphatic system and eventually into the bloodstream, where they can be utilized by various tissues in the body.
Therefore, it is correct to say that fatty acids and glycerol enter the intestinal cells in the form of micelles during lipid absorption.
Learn more about Lipids-
https://brainly.com/question/17352723
#SPJ11
For this reaction Glyceraldehyde-3-phosphate + NAD+ + P₁ => 1,3-bisphosphoglycerate+NADH +H* Which statement is CORRECT? a) Glyceraldehyde-3-phosphate is oxidised. b) Glyceraldehyde-3-phosphate is reduced. c) NAD* is the electron donor. d) ATP is being consumed.
For this reaction Glyceraldehyde-3-phosphate + NAD+ + P₁ => 1,3-bisphosphoglycerate+NADH +H, the correct statement is Glyceraldehyde-3-phosphate is reduced. So, option B is accurate.
n the given reaction, glyceraldehyde-3-phosphate is being converted into 1,3-bisphosphoglycerate. This conversion involves the gain of electrons and hydrogen ions (H*) by glyceraldehyde-3-phosphate. This gain of electrons is characteristic of reduction reactions.
NAD+ (nicotinamide adenine dinucleotide) acts as an electron acceptor in this reaction and is reduced to NADH. NAD+ accepts the electrons and hydrogen ions from glyceraldehyde-3-phosphate, thereby becoming reduced.
Therefore, glyceraldehyde-3-phosphate is being reduced in the reaction, and statement b) Glyceraldehyde-3-phosphate is reduced is correct.
To know more about reduction reactions
brainly.com/question/19528268
#SPJ11
can
cell culture medium (without cells in it) be stored in air tight
flasks at 4 degrees?
Yes, cell culture medium without cells can be stored in airtight flasks at 4 degrees Celsius.
Cell culture medium is typically formulated to support cell growth and survival. While cells are not present in the medium, it still contains a variety of components such as nutrients, vitamins, and buffering agents that can be susceptible to degradation over time. Storing the medium in airtight flasks at 4 degrees Celsius can help preserve its quality and extend its shelf life.
Refrigeration at 4 degrees Celsius slows down the rate of chemical reactions and microbial growth, reducing the risk of contamination and degradation of the medium. The airtight seal prevents the entry of air, which can introduce contaminants or cause oxidative damage to sensitive components in the medium. It is important to ensure that the flasks are properly sealed to maintain the sterility of the medium.
However, it's worth noting that the storage time of the cell culture medium may vary depending on the specific formulation and quality requirements. It is recommended to consult the manufacturer's guidelines or literature for specific instructions on the storage conditions and shelf life of the medium. Regular monitoring of the medium's pH, appearance, and sterility is also advisable to ensure its suitability for cell culture applications.
Learn more about cell culture medium:
https://brainly.com/question/30273504
#SPJ11
What is the most common cause of familial hypercholesterolemia (FH)? Why do people with FH have high levels of LDL cholesterol?
Familial hypercholesterolemia (FH) is most commonly caused by a genetic mutation that affects the liver's ability to remove low-density lipoprotein (LDL) cholesterol from the bloodstream.
As a result, people with FH have high levels of LDL cholesterol because their bodies cannot remove it effectively.
Familial hypercholesterolemia (FH) is an inherited condition that causes very high levels of LDL cholesterol in the blood. LDL cholesterol, often known as "bad" cholesterol, is a type of cholesterol that can clog arteries, increasing the risk of heart disease and stroke. FH is caused by a genetic mutation that affects the body's ability to clear LDL cholesterol from the bloodstream.
As a result, people with FH have high levels of LDL cholesterol, which can cause cholesterol build up in the arteries and an increased risk of cardiovascular disease. Familial hypercholesterolemia (FH) is caused by a genetic mutation that affects the liver's ability to remove LDL cholesterol from the bloodstream. This mutation is usually inherited from one parent and is present from birth.
The majority of people with familial hypercholesterolemia (FH) do not have any symptoms, and the condition is frequently detected during routine cholesterol testing. In some people, however, there may be physical signs of cholesterol build up, such as yellowish patches on the skin (xanthomas) or the development of cholesterol-filled lumps under the skin (xanthelasmas).
People with FH are more likely to develop heart disease at a young age and have a higher risk of heart attacks, strokes, and other cardiovascular problems. For this reason, early detection and treatment are critical in managing the condition and reducing the risk of complications.
To know more about hypercholesterolemia visit:
https://brainly.com/question/1145024
#SPJ11
Describe how eukaryotic cells initiate transcription. Include in your answer the processes from dealing with compact chromatin through to the appearance of a transcript.
Transcription is the process of transcribing or creating a copy of DNA into RNA, and this process is essential for protein synthesis in eukaryotic cells. Transcription initiation occurs when a DNA sequence is recognized by transcription factors, which subsequently recruit RNA polymerase, the enzyme that synthesizes RNA strands.
In eukaryotic cells, DNA is packaged into nucleosomes, which are compacted into chromatin. This compaction makes it challenging for RNA polymerase to bind to the promoter regions of genes and initiate transcription. Transcription factors such as TATA-binding proteins and general transcription factors recognize the promoter sequence in the DNA and help to recruit RNA polymerase. To make the DNA accessible, chromatin-modifying enzymes can add or remove chemical groups to alter the chromatin structure. Once RNA polymerase is recruited to the promoter, it initiates transcription, creating a complementary RNA copy of the DNA sequence. This process involves elongation, where RNA polymerase adds nucleotides to the growing RNA strand, and termination, where RNA polymerase stops transcription and releases the RNA strand. The resulting RNA molecule is then further processed, including the addition of a 5' cap and a 3' poly(A) tail, before it is transported out of the nucleus for translation into a protein.
To know more about DNA sequence visit:
https://brainly.com/question/31650148
#SPJ11
Which of the following IS NOT an example of a "direct benefit"? Select one: O a. assistance with Child rearing genes O c. food O d. shelter
Assistance with child rearing genes is not an example of a direct benefit. The given option is about assistance with child rearing genes. It is not directly related to the individual, and it is not an essential component of life.
Direct benefits refer to the benefits that are received by an individual as a result of direct actions. These benefits are seen in the form of food, shelter, care, and other necessary components of life. Direct benefits are typically divided into two categories: Primary benefits and Secondary benefits.Primary benefits are the benefits that are directly related to the individual, such as food, shelter, and care. Secondary benefits are benefits that are indirectly related to the individual, such as employment, education, and medical care.Direct benefits are immediate and tangible. These benefits are measurable and quantifiable. The benefits of direct action can be measured in monetary terms. Indirect benefits are long-term and less tangible. These benefits are difficult to measure.Indirect benefits are related to the individual, such as increased earning potential, but not directly. The benefits of indirect action cannot be easily measured in monetary terms. They are long-term and less tangible.
Assistance with child rearing genes is not an example of a direct benefit. The given option is about assistance with child rearing genes. It is not directly related to the individual, and it is not an essential component of life.
To know more about Indirect benefits visit:
brainly.com/question/15094983
#SPJ11
You have been given the DNA sequence for a particular fragment of DNA. You then isolated the mRNA made from that DNA and amplified it by PCR. You then determined the sequence of the cDNA obtained from different cells. You notice a difference. In the sequence obtained from DNA sequencing you see that a codon is 5' CAG however on the cDNA sequence it is TAG. These results are confirmed by repeated DNA sequence analysis using DNA and cDNA from different cell cultures (same species and tissue samples). What can explain this?
a.
The DNA must have been mutated in all the cells that were used to isolate mRNA since the cDNA should always match the genomic sequence.
b.
Any cDNA made through RT-PCR will have T's substitued for genomic C's that are methyulated.
c.
The mRNA must have been deaminated at the cytosine.
d.
The cDNA generated most likely had a technical mistake caused by poor fidelity of the Taq enzyme.
The correct answer to the given question is option b "Any cDNA made through RT-PCR will have T's substituted for genomic C's that are methylated".
The given DNA sequence for a specific DNA fragment has been studied, followed by the isolation of mRNA made from that DNA and PCR amplification.
Finally, the cDNA sequence obtained from different cells was determined, and a difference was noticed.
The codon is CAG 5' in the DNA sequence, while it is TAG in the cDNA sequence.
The following can explain this situation: Any cDNA made through RT-PCR will have T's substitued for genomic C's that are methyulated.
It is a known fact that the cDNA sequence obtained through RT-PCR will have T's substituted for the genomic C's that are methylated.
Therefore, the answer to the question mentioned above is option (b). DNA is subject to methylation, a process that affects CpG dinucleotides and other cytosines in DNA.
This methylation usually occurs at promoter regions and other regulatory sequences and is often associated with the repression of gene expression.
Methylation is a heritable feature in many eukaryotic species.
The Taq polymerase that is commonly used to make cDNA is known for its lack of proofreading and high error rates. In particular, during PCR amplification, the Taq polymerase will misincorporate nucleotides in locations where a methylated cytosine is present in the DNA template.
This will result in thymine being placed in the cDNA where a cytosine is present in the genomic sequence, resulting in a difference in the nucleotide sequence.
The difference in nucleotide sequence can be observed by analyzing the genomic sequence and the cDNA sequence.
Therefore, we can conclude that option (b) is the correct option to the given question. Any cDNA made through RT-PCR will have T's substituted for genomic C's that are methylated.
To know more about Methylation visit:
brainly.com/question/32132076
#SPJ11
The evolution of hominins occurred in a linear fashion, with one species evolving onto a new species, which eventually gave rise to homo sapiens. Evaluate this statement, state if it is TRUE or FALSE. If your answer is FALSE, please use 1−2 sentences to explain your reasoning.
No, the above stement is false. The evolution of hominins was not a linear process with one species evolving directly into the next leading to Homo sapiens.
Instead, the evolution of hominins involved a complex and branching pattern with multiple species coexisting at different points in time. Fossil evidence reveals a diversity of hominin species with varying traits and adaptations. For example, at one point in time, multiple hominin species such as Homo habilis, Homo erectus, and Homo neanderthalensis coexisted. Additionally, genetic studies have shown interbreeding and genetic exchange between different hominin species. This evidence indicates that the evolution of hominins was a complex and interconnected process, involving both gradual changes within species and the emergence of new species through divergent evolution.
To learn more about Homo sapiens, click here:
https://brainly.com/question/30673067
#SPJ11
In the presence of an unknown toxin it was found that, when provided either pyruvate or malate as an energy source, mitochondria rapidly stop consuming O₂ and die (stop functioning). However, in the presence of the same concentrations of the toxin the mitochondria continued consuming O₂ and continued living when they were provided succinate as the energy source. Which of the following is the most likely target for inhibition by the toxin? Select one: O a. Electron transport complex II O b. malate dehydrogenase O c. Electron transport complex IV O d. Electron transport complex I O e. succinate dehydrogenase
When the mitochondria were given either pyruvate or malate as an energy source in the presence of an unknown toxin, they quickly stopped consuming O2 and died. The correct answer is option (E) succinate dehydrogenase.
In the presence of the same concentrations of the toxin, however, the mitochondria kept consuming O2 and living when they were given succinate as an energy source, making the answer most likely to be succinate dehydrogenase.
The statement implies that the unknown toxin's effects on mitochondrial respiration differ depending on the mitochondrial electron transport complex that is in use.
The electron transport chain contains several enzymes that pump protons across the inner mitochondrial membrane and generate an electrochemical proton gradient. The electrochemical proton gradient is used by the ATP synthase enzyme to synthesize ATP molecules.
The electrons are transferred from the electron donor (succinate) to the electron acceptor (O2) in the electron transport chain. Succinate dehydrogenase is responsible for this process in the electron transport chain.It is obvious that the unknown toxin does not interfere with electron transport complexes I and IV because succinate-supported oxygen consumption was not disrupted.
Complex II is composed of succinate dehydrogenase, while complex I is composed of NADH dehydrogenase, and complex IV is composed of cytochrome c oxidase. Therefore, the most likely target for the toxin inhibition is the enzyme succinate dehydrogenase.
To know more about mitochondria visit :
https://brainly.com/question/14740753
#SPJ11
QUESTION Which of the group to control trato y by como choryou wo OW UMP QUESTION 10 The concerto de tre points action proceeds from the concertation of the start in a M. 20 second the concert 046 M.
The group that controls the trade and how it is carried out is determined by the concertation of the start in a 20-second period during the concerto, with a measurement of 0.46 M.
The control of trade and its execution is determined by a specific group that engages in concertation, or collaborative decision-making. This group holds the authority to dictate the terms and conditions of trade, as well as the manner in which it is conducted. The concertation process takes place within a defined time frame, specifically during the start of the concerto, which lasts for 20 seconds. Within this limited duration, the group reaches a consensus on the actions to be taken and the strategies to be employed in the trade. The measurement of 0.46 M likely refers to a quantitative parameter or metric associated with the trade, such as a monetary value or a numerical index.
Learn more about concerto
brainly.com/question/10592545
#SPJ11
Write down the sentences. Make all necessary corrections. ► 1. Han said Please bring me a glass of Alka-Seltzer. ►2. The trouble with school said Muriel is the classes. ►3. I know what I'm going
1. Han requested a glass of Alka-Seltzer, while Muriel pointed out that the classes were the trouble with school. 2. Confident in their plans, the speaker expressed their knowledge of what they were about to do. 3. The speaker asserted their awareness of their forthcoming actions.
1. Han said, "Please bring me a glass of Alka-Seltzer."
2. "The trouble with school," said Muriel, "is the classes."
3. "I know what I'm going to do."
In sentence 1, I added quotation marks to indicate that Han's words are being directly quoted. Additionally, "Alka-Seltzer" should be capitalized since it is a proper noun.
In sentence 2, I placed the dialogue tag "said Muriel" inside the quotation marks to indicate that Muriel is the one speaking.
The word "said" should be lowercase, and the comma should be placed before the closing quotation mark.
In sentence 3, I corrected the capitalization of "I'm" to "I'm" since it is a contraction of "I am." The sentence should end with a period since it is a complete statement.
Overall, these corrections ensure proper punctuation, capitalization, and formatting for the given sentences.
To know more about Confident refer here:
https://brainly.com/question/31316566#
#SPJ11