The given cross is as follows:
AADbCC (Yellow flower) × AABBcc (Orange flower)
Let us first write the gametes for each of the parent:
Gametes for AADbCC will be as follows:
ADBC, ADBC, AdBC, AdBCCapital letters represent dominant alleles and small letters represent recessive alleles.
Gametes for AABBcc will be as follows:
ABc, ABc, Abc, Abc
We can now write the punnett square for the given cross:
F1 progeny will be:
AaDdBbCc (All yellow flowers)
Phenotypic ratio will be 1:0 (All yellow flowers)
F2 progeny will be as follows:
9 A-Dominant B-Dominant C-Dominant (Yellow flowers)3 A-Dominant B-Dominant cc (Orange flowers)3 A-Dominant bb C-Dominant (Yellow flowers)1 A-Dominant bb cc (Orange flowers)1 aa B-Dominant C-Dominant (Yellow flowers)1 aa B-Dominant cc (Orange flowers)1 A-Dominant bb C-Dominant (Yellow flowers)1 aa bb C-Dominant (Yellow flowers)
Phenotypic ratio will be 9:3:3:1 (9 Yellow flowers :
3 Orange flowers with dominant A & B alleles : 3 Orange flowers with dominant B & C alleles : 1 Orange flower with recessive A & B alleles)
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Quantity which refers to the number of reaction process that each active site of the enzyme catalyzes per unit time.
a. Turnover number
b. Catalytic efficiency
c. Enzyme activity
d. Specific enzyme activity
Quantity which refers to the number of reaction process that each active site of the enzyme catalyzes per unit time Turnover number. The correct option is a.
The turnover number refers to the number of reaction processes that each active site of an enzyme catalyzes per unit time. It is also known as kcat and is a measure of the catalytic activity of an enzyme. The turnover number provides information about how efficiently an enzyme can convert substrate molecules into product molecules. It is expressed as the number of substrate molecules converted per active site per second.
Option a, turnover number, accurately describes the quantity mentioned in the question. Options b, c, and d (catalytic efficiency, enzyme activity, and specific enzyme activity) are related concepts but do not specifically refer to the number of reaction processes per active site per unit time.
Therefore, the correct answer is a.
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Hey,
I need help with the following question from physiology, Thank you!
The question:
The heart's pumping ability is of course central to the circulatory system and the heart's chambers pump out a certain amount of blood during each heartbeat.
a) What is this volume called?
b) It is important that the two halves of the heart pump an equal amount of blood per unit of time. What is the law that describes this phenomenon called?
c) Describe the mechanism that causes the two halves of the heart to always pump the same amount of blood per unit of time.
a) The volume of blood pumped out by the heart during each heartbeat is called stroke volume.
b) The law that describes the phenomenon of the two halves of the heart pumping an equal amount of blood per unit of time is known as Starling's law of the heart.
c) The mechanism that ensures the two halves of the heart pump the same amount of blood per unit of time is based on the principle of cardiac output. The cardiac output is the product of stroke volume (the volume of blood pumped out by each ventricle per beat) and heart rate (the number of beats per minute). To maintain equal cardiac output, the heart adjusts the stroke volume and heart rate based on the body's needs. The two halves of the heart work in coordination through electrical signals and the timing of contractions to ensure that the blood is pumped in a synchronized manner and in equal amounts. The heart's electrical system, including the sinoatrial (SA) node and the atrioventricular (AV) node, plays a crucial role in coordinating the contraction of the atria and ventricles to achieve this balance.
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9 38 Question 2 (1 point) Which of the following is true about post-translational modifications? They are encoded in the DNA They can alter the protein structure Acetylation is the most common They ca
Answer: Post-translational modifications can alter the protein structure.
Post-translational modifications (PTMs) are covalent modifications that occur to proteins after they are synthesized. These changes can alter the protein's structure, localization, activity, or interaction with other molecules, among other things. PTMs are essential for protein function in a wide range of biological processe
s. Some of the most common types of PTMs include phosphorylation, acetylation, glycosylation, and ubiquitination. These modifications can occur at specific amino acids in the protein sequence and are mediated by specific enzymes. Unlike DNA, which encodes the primary structure of proteins, PTMs are dynamic and can respond to changes in the environment or other cellular signals. They are essential for many biological processes, including signaling pathways, gene expression, and cell division.
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1,200 lb Average mature weight of cows at BCS of 5: Target calving season of mature cows: September 1 to November 1 annually May 1 annually Target weaning date (calves from mature cows): Average weight of heifers at weaning (from mature cows): 520 lb 7. What are the (a) target breeding weights and (b) calving weights from typical heifers produced in this herd? a. b. 8. Your mature cows need to go from BCS 5 at weaning time to a BCS 6 at the start of the upcoming calving season. Assume that these cows need to gain 75 lb of weight just from the pregnancy. Calculate: (a) the total weight gain needed per cow and (b) the average daily gain needed per cow. a. 8. Your mature cows need to go from BCS 5 at weaning time to a BCS 6 at the start of the upcoming calving season. Assume that these cows need to gain 75 lb of weight just from the pregnancy. Calculate: (a) the total weight gain needed per cow and (b) the average daily gain needed per cow. a. b. 9. Relative to this scenario: (a) what breeding season is needed for the cows, and (b) what breeding season is needed for the heifers for them to begin and end calving three weeks earlier than the cows? a. b. Name: 10. Using the above information, calculate the average daily gain (ADG) needed on heifers from (a) the weaning date to the start of the breeding season, and (b) from start of breeding season to the start of the calving season. a. b. In regard to mature cows, there were 180 cows exposed to bulls during the previous breeding season. There were 168 cows palpated pregnant, 163 cows that calved, and 158 cows that weaned calves; the average weaning weight of all the calves was 535 lb. 11. For this scenario what were: (a) the percent pregnant, and (b) the pounds of calf weaned per cow exposed? a. b.
The target breeding weight for heifers would be approximately 780-840 lb. the target calving weight for heifers would be approximately 1,020-1,080 lb. The total weight gain needed per cow is 75 lb.
To calculate the target breeding weights and calving weights for typical heifers produced in this herd, we need to consider the average mature weight of cows, the average weight of heifers at weaning, and the desired calving season.
(a) Target Breeding Weights for Heifers: The target breeding weight for heifers is typically around 65-70% of their projected mature weight. Assuming a mature cow weight of 1,200 lb, the target breeding weight for heifers would be approximately 780-840 lb.
(b) Calving Weights for Heifers: The calving weight for heifers can vary, but a common target is around 85-90% of their mature weight. Using the mature cow weight of 1,200 lb, the target calving weight for heifers would be approximately 1,020-1,080 lb.
Moving on to the calculations for mature cows, assuming they need to gain 75 lb of weight just from pregnancy to reach a BCS of 6 at the start of the calving season:
(a) Total Weight Gain Needed per Cow: The total weight gain needed per cow is 75 lb.
(b) Average Daily Gain Needed per Cow: To determine the average daily gain needed, we need to consider the duration of pregnancy. If the calving season starts 9 months after the weaning time (assuming 280 days of pregnancy), the average daily gain needed would be 75 lb divided by 280 days, resulting in approximately 0.27 lb/day.
For the breeding and calving seasons to begin and end three weeks earlier for both cows and heifers:
(a) Breeding Season for Cows: The breeding season for cows would need to be adjusted to ensure a three-week earlier start, typically around late November to early January.
(b) Breeding Season for Heifers: Similarly, the breeding season for heifers would also need to be adjusted to achieve a three-week earlier start, usually in late November to early January.
To calculate the average daily gain (ADG) needed for heifers:
(a) ADG from Weaning to the Start of Breeding Season: To determine the ADG needed, we would divide the weight gain from weaning to the start of the breeding season by the number of days between those two time points.
(b) ADG from Start of Breeding Season to the Start of Calving Season: Similarly, we would divide the weight gain from the start of the breeding season to the start of the calving season by the number of days in that period.
Lastly, for the scenario with 180 cows exposed to bulls, 168 cows palpated pregnant, and 163 cows that calved and weaned:
(a) Percent Pregnant: The percent pregnant would be calculated by dividing the number of cows palpated pregnant (168) by the number of cows exposed to bulls (180) and multiplying by 100. This would result in approximately 93.3% pregnant.
(b) Pounds of Calf Weaned per Cow Exposed: The pounds of calf weaned per cow exposed would be calculated by dividing the total pounds of calf weaned (from 163 cows) by the number of cows exposed to bulls (180). With an average weaning weight of 535 lb, the pounds of calf weaned per cow exposed would be approximately 481 lb.
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In order to do tissue culture, you need to understand your media. Address the following questions about your medias.
Most tissue culture cells are incubated in the presence of 5% CO2 and 95% air. Although CO2 is required for optimal cell growth, high concentrations of dissolved CO2 in the media will lower the pH, which will inhibit cell growth.
What causes the drop in pH and what substance is added to media to maintain the pH at 7.4? Please show chemical equations in your answer.
Why is Fetal Bovine Serum is heat-inactivated and what is the procedure for heat-inactivation and subsequent storage?
The heat-inactivation procedure kills the complement without damaging the other components in the FBS, thus ensuring that the cells are not destroyed during culture.
Tissue culture is a technique that is used to grow and maintain cells in vitro under controlled laboratory conditions. In order to do tissue culture, it is necessary to understand the media being used. The following questions address various aspects of the media that are used in tissue culture.
Most tissue culture cells are incubated in the presence of 5% CO2 and 95% air. While CO2 is necessary for optimal cell growth, high concentrations of dissolved CO2 in the media will lower the pH, which will inhibit cell growth. The drop in pH is caused by the accumulation of carbon dioxide (CO2) in the media. Carbon dioxide reacts with water in the media to produce carbonic acid (H2CO3), which ionizes to release hydrogen ions (H+) and bicarbonate ions (HCO3-):CO2 + H2O ⇌ H2CO3 ⇌ H+ + HCO3-Bicarbonate is added to media to maintain the pH at 7.4.
It acts as a buffer by binding to excess hydrogen ions and removing them from the media, thereby preventing the pH from dropping too low. The following equation shows how bicarbonate acts as a buffer:HCO3- + H+ ⇌ H2CO3Fetal bovine serum (FBS) is used in tissue culture as a supplement to provide nutrients, growth factors, and other critical components that are required for cell growth. FBS is heat-inactivated to inactivate any complement, which is a group of proteins that can destroy cells.
This is done by heating the FBS at 56°C for 30 minutes. Following heat-inactivation, the FBS is stored at -20°C until it is ready to be used.
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Question 24 The macro-complexes formed by the intrinsic and extrinsic pathways that activate the common pathway are called: Brady-Kinen complexes Fibrinolysis complexes Factor activator complexes Tena
The macro-complexes formed by the intrinsic and extrinsic pathways that activate the common pathway are called Factor activator complexes. The correct answer is option c.
Factor activator complexes are macro-complexes formed by the intrinsic and extrinsic pathways that activate the common pathway of the blood coagulation cascade.
These complexes play a crucial role in initiating the formation of fibrin, the key component of blood clots. They involve various factors, such as factor VIII, factor IX, factor X, and factor XI, along with cofactors and other regulatory proteins.
The factor activator complexes act as catalysts to promote the conversion of factor X to its active form (factor Xa), leading to the subsequent activation of the common pathway and ultimately the formation of a stable blood clot.
The correct answer is option c.
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Complete question
Question 24 The macro-complexes formed by the intrinsic and extrinsic pathways that activate the common pathway are called:
a. Brady-Kinen complexes
b. Fibrinolysis complexes
c. Factor activator complexes
pitenesin 6. In this lab, we reviewed numerous fossil species and their defining characteristics. To help you make compari- sons across these species and understand larger trends in our evolutionary history, complete the Australopith and Early Homo Chart on pp. 446-447. AUSTRALOPITH AND EARLY HOMO CHART Fossil Species Dates and Geographic Region Cranial and Dental Traits Postcranial Traits Suggested Behavior Australopithecus anamensis Australopithecus afarensis LAB 15 | The Australopiths and Early Members of the Australopithecus africanus Australopithecus garhi Australopithecus sediba Australopithecus (Paranthropus) aethiopicus AUSTRALOPITH AND EARLY HOMO CHART (continued) Fossil Species Dates and Geographic Region Cranial and Dental Traits Postcranial Traits Suggested Behavior Australopithecus (Paranthropus) boisei Australopithecus (Paranthropus) robustus Australopithecus deyiremeda Homo habilis (including H. rudolfensis)
Previous question
In this lab, we have examined many fossil species and their defining characteristics. To help you make comparisons across these species and understand larger trends in our evolutionary history.
let us complete the Australopith and Early Homo Chart. The Australo pith and Early Homo Chart is a tabular presentation of some Australopith and Early Homo fossils. This chart allows you to make comparisons across these fossils, to identify some of their similarities and differences.
Understand some of the significant trends in the evolution of these hominins.The following is a sample of the Australopith and Early Homo Chart that we have completed in this lab: Fossil Species Dates and Geographic Region Cranial and Dental Traits Postcranial Traits Suggested Behavior Australopithecus anamensis .
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An embryo exposed to a new teratogen caused all the ectoderm cells to be stuck at the dorsal surface of the embryo. The most likely explanation for this would be
That teratogen activated migration
The teratogen prevented cleavage
The teratogen prevented cell division
The teratogen blocked epiboly
The most likely explanation for the ectoderm cells being stuck at the dorsal surface of the embryo after exposure to the teratogen would be that the teratogen blocked epiboly.
Epiboly is a process during embryonic development in which cells from the animal pole of the embryo migrate and spread over the surface of the yolk. This movement allows for the proper positioning and organization of the germ layers, including the ectoderm. If the teratogen interferes with the process of epiboly, it can disrupt the normal movement of cells and result in the ectoderm cells being unable to properly spread and differentiate to their correct locations. In this case, the teratogen's effect on blocking epiboly would explain why the ectoderm cells are stuck at the dorsal surface of the embryo. The teratogen is preventing the normal migration and spreading of cells, leading to this abnormal localization of the ectoderm cells.
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Imagine you are a health care professional and one of your patients just received a blood transfusion. When you go to check on her, you notice there is blood in her urine and is having breathing difficulties. You look at her chart and you notice that she is 0 - but received B+ blood! a. Explain your concern for the patient receiving B+ and why she is having these symptoms. Consider the respiratory, circulatory, and urinary systems and the role of antibodies in your answer. b. Erythropoietin may be used to correct this situation. Explain why.
The patient's symptoms of blood in urine and breathing difficulties after receiving B+ blood indicate a severe transfusion reaction due to an incompatible blood type. The presence of antibodies against the B antigen in the patient's blood, as a result of being blood type O, is causing the reaction. Erythropoietin can be used to help correct this situation by stimulating red blood cell production to compensate for the damage caused by the transfusion reaction.
a. The patient's symptoms of blood in urine and breathing difficulties suggest a severe transfusion reaction due to an incompatible blood type. The patient is blood type O but received B+ blood. Blood type is determined by the presence or absence of specific antigens on the surface of red blood cells. In this case, the patient's blood contains antibodies against the B antigen since blood type O individuals have naturally occurring antibodies against both A and B antigens.
When the patient received B+ blood, which contains the B antigen, the antibodies in the patient's blood recognized the foreign antigen and triggered an immune response. This immune response leads to the destruction of the transfused B+ red blood cells, causing the release of hemoglobin into the bloodstream. The presence of hemoglobin in the urine results in blood in the urine (hematuria).
The transfusion reaction can also lead to a systemic inflammatory response and damage to the respiratory and circulatory systems. The release of inflammatory mediators can cause fluid accumulation in the lungs, leading to breathing difficulties.
b. Erythropoietin is a hormone that stimulates the production of red blood cells in the bone marrow. In the given situation, erythropoietin may be used to correct the situation by stimulating red blood cell production. The transfusion reaction has likely caused significant damage to the patient's red blood cells, leading to a decreased number of functional red blood cells and subsequent anemia.
By administering erythropoietin, the production of new red blood cells can be increased, compensating for the damaged cells and improving oxygen-carrying capacity. This can help alleviate symptoms related to anemia and support the patient's overall recovery. However, it is important to address the underlying transfusion reaction and manage the patient's symptoms promptly and appropriately.
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9. Which of the following sunlight classes of UV radiation has the shortest wavelength? a) UVA b) UVB c) UVC d) UVD 10. Human Papillomavirus is the main cause of _____.
a) testicular cancer b) cervical cancer c) breast cancer d) hepatocarcinoma 11. The phenomena in which the integration of viral DNA into host chromosome that cause activation or disruption of a normal gene is known as ______.
a) insertional mutagenesis b) proliferating mutagenesis c) transforming mutagenesis d) constitutive mutagenesis
UVC has the shortest wavelength among the sunlight classes of UV radiation. Cervical cancer is mainly caused by Human Papillomavirus (HPV). The underlying mechanism is thought to be insertional mutagenesis, a process by which there is an integration of viral DNA into the host chromosome that causes activation or disruption of the normal host gene.
Among the sunlight classes of UV radiation, UVC has the shortest wavelength. UVA has the longest wavelength, followed by UVB and then UVC.
Human Papillomavirus (HPV) is the man causative agent of cervical cancer. HPV is a sexually transmitted infection that can lead to the development of abnormal cervical cells, which, if left untreated, can progress to cervical cancer. It is important for individuals, particularly females, to undergo regular screening tests, such as Pap smears and HPV testing, to detect and prevent cervical cancer.
The phenomenon in which viral DNA integrates into the host chromosome and causes activation or disruption of a normal gene is known as insertional mutagenesis. Viral DNA can insert itself into the host genome and affect the expression and function of genes.
This integration can lead to genetic changes that contribute to the development of various diseases, including certain types of cancer. Insertional mutagenesis is a mechanism through which viruses can alter the normal functioning of host cells and potentially drive cellular transformation.
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1) In cycle 1 and all subsequent cycles of the PCR reaction, one copy of each of the two original strands will be synthesized at the 3' end of the primer and up to the 5' end of the original strand. Write the sequence of the copies (C1 and C2) that are made of the chains O1 and O2.
(01) 3' T C G G C T A C A G C A G C A G A T G G T A C G T A 5'
(C1) 5' C C G A T _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ 3'
(O2) 5' A G C C G A T G T C G T C G T C T A C C A T G C A T 3'
(C2) 3' _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ A T G G T 5'
PCR uses O1 and O2 as templates for DNA synthesis. PCR cycles involve denaturation, annealing, and extension.
The first cycle denatures O1 and O2, splitting the double-stranded DNA into single strands. Primer 3' binds to template strand complementary sequences. We don't know the primer's 3' end sequence from the sequences. The primer starts DNA synthesis by binding to a specific area. DNA polymerase uses the original strands as templates to synthesize new strands during extension. 5'-to-3' synthesis occurs. Thus, each template strand's new copy will be synthesized from the primer's 3' end to the original strand's 5' end.
Let's complete the sequences:
(C1) 5' C C G A T G G T A C G T A _ _ _ 3'
(C2) 3' _ A T G G T 5'
C1 synthesizes O1 from its 3' primer end to its 5' end. C2's synthesis begins at O2's 3' primer end and continues to its 5' end.
We can't establish C1 and C2's exact sequences without the primer sequence. The primer sequence determines DNA synthesis nucleotide order.
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Question 45 Not yet graded / 7 pts Part A about the topic of nitrogen in biology. How does nitrogen come into the biosphere (including what pathway and the two important enzymes involved)? How does nitrogen come into the human body? And, what bridges the gap between how nitrogen enters the biosphere and how it enters the human body?
Nitrogen enters the biosphere primarily through the process of nitrogen fixation. In this pathway, atmospheric nitrogen (N₂) is converted into a biologically useful form, such as ammonia (NH₃), by nitrogen-fixing bacteria.
These bacteria possess the enzyme nitrogenase, which catalyzes the conversion of N₂ to NH₃. Another important enzyme involved in nitrogen fixation is nitrogen reductase, which reduces nitrate (NO₃⁻) to nitrite (NO₂⁻) during the process.
In the human body, nitrogen enters through dietary intake. We obtain nitrogen primarily through the consumption of protein-rich foods, such as meat, fish, eggs, and legumes. Proteins are composed of amino acids, and nitrogen is an essential component of amino acids. Through the digestion and breakdown of dietary proteins, the nitrogen-containing amino acids are released and utilized by the body for various biological processes.
The gap between how nitrogen enters the biosphere and how it enters the human body is bridged by the nitrogen cycle. Nitrogen compounds present in the environment, such as ammonia and nitrate, can be taken up by plants and incorporated into their tissues.
Animals then consume these plants, obtaining nitrogen in the form of dietary protein. The nitrogen cycle encompasses processes like nitrogen fixation, nitrification, assimilation, and denitrification, which ensure the cycling and availability of nitrogen in the biosphere for various organisms, including humans.
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The vertical gaze center contains premotor neurons that project to lower motor neurons and interneurons in the abducens nucleus. True False
The statement is false. The vertical gaze center does not contain premotor neurons that project to lower motor neurons and interneurons in the abducens nucleus.
The vertical gaze center, which is responsible for controlling eye movements in the vertical direction, does not directly contain premotor neurons that project to lower motor neurons and interneurons in the abducens nucleus. Instead, the vertical gaze center involves the integration of multiple brain regions and neural pathways.
The primary brain structure involved in vertical eye movements is the rostral interstitial nucleus of the medial longitudinal fasciculus (riMLF). The riMLF receives input from the superior colliculus, a midbrain structure involved in eye movements, and it projects to the oculomotor nucleus, which controls the extraocular muscles responsible for vertical eye movements. The abducens nucleus, on the other hand, primarily controls horizontal eye movements. Thus, there is no direct connection between the premotor neurons of the vertical gaze center and the lower motor neurons and interneurons in the abducens nucleus.
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Which of the following secretes citric acid, and what is the function of this molecule?
Nurse cells, is a source of nutrient for sperm
Cowper’s gland, helps sperm motility
Bulbourethral gland, has an antimicrobial effect
Prostate gland, is used by sperm for ATP production
Seminal vesicle, acts as a lubricant
The prostate gland secretes citric acid, which is used by sperm for ATP production.
Citric acid is secreted by the prostate gland. It is an important molecule for sperm function and plays a role in energy production. Citric acid is utilized by the mitochondria in the sperm cells to generate ATP (adenosine triphosphate), which is the main energy currency in cells.
ATP provides the energy required for various cellular processes, including sperm motility and fertilization.
The prostate gland, located in the male reproductive system, contributes to the seminal fluid. Along with other components of semen, such as seminal vesicle secretions, it provides the necessary nutrients, enzymes, and fluids to support the survival and function of sperm.
Citric acid, as one of the components of prostate secretions, serves as a substrate for ATP production in sperm mitochondria. This ATP production is vital for sperm motility, allowing them to swim and reach the site of fertilization.
In summary, the prostate gland secretes citric acid, which acts as a source of energy for sperm by being utilized in ATP production.
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A bacteria lives in a hydrothermal pool with an average temperature of 70 degC and a pH of 3. It's enzymes are going to function ideally at which of the following ranges? a) 65-72 degC and 2-4. b) 65-72 degC and 5-7. c) 35-40 degC and 6-8. d) 50-60 degC and 2-4.
The enzymes of the bacteria living in a hydrothermal pool with an average temperature of 70°C and a pH of 3 would function ideally within the range of a) 65-72°C and 2-4 pH.
Extreme temperature and pH conditions in the hydrothermal pool would suggest that the bacteria has adapted to survive and function optimally within those specific ranges. Therefore, the enzymes of the bacteria would be most efficient and effective within the temperature range of 65-72°C and the pH range of 2-4.
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list of bacteria for bacterial identification assignment Here is the the "list of suspects" for the bacterial identification assignment. Again, for the bacterial identification assignment, you will design a key that allows you to identify every bacteria on this list (i.e., they key should put EACH bacteria on the list into a group all by itself). Use the same approach you used in the "building your key" exercise that you worked on over the last 2-3 weeks and turned in last friday. Bacillus cereus Citrobacter freundii Clostridium Enterobacter aerogenes Enterococcus (Streptococcus) faecalis Escherichia (E.) coli Lactococcus (Streptococcus) lactis Mycobacterium Proteus vulgaris Proteus mirabilis Serratia marcescens Staphylococcus epidermidis
In the list of bacteria for bacterial identification assignment, Bacillus cereus is an aerobic spore-forming bacterium that is gram-positive. They may be found in soil, air, water, and some foods. Citrobacter freundii is an opportunistic pathogen that is gram-negative and has peritrichous flagella.
Clostridium is a gram-positive bacterium that produces an endospore. Enterobacter aerogenes is a gram-negative bacterium that is opportunistic and may cause healthcare-associated infections. Enterococcus (Streptococcus) faecalis is a gram-positive bacterium that is a commensal of the gastrointestinal tract, but may also cause healthcare-associated infections.
Escherichia coli is a gram-negative bacterium that is a normal constituent of the gut flora but can also cause urinary tract infections. Lactococcus (Streptococcus) lactis is a gram-positive bacterium used in the dairy industry.
Mycobacterium is an acid-fast bacterium that is difficult to stain with the Gram method. Proteus vulgaris is a gram-negative bacterium that is rod-shaped and mobile. Proteus mirabilis is a gram-negative bacterium that is rod-shaped and mobile.
Serratia marcescens is an opportunistic bacterium that is gram-negative and has a prodigious pigment that gives it a reddish-orange hue. Staphylococcus epidermidis is a gram-positive bacterium that is a commensal of the skin, but can also cause healthcare-associated infections.
Thus, the list of bacteria for the bacterial identification assignment is as follows:
Bacillus cereus, Citrobacter freundii, Clostridium, Enterobacter aerogenes, Enterococcus (Streptococcus) faecalis, Escherichia (E.) coli, Lactococcus (Streptococcus) lactis, Mycobacterium, Proteus vulgaris, Proteus mirabilis, Serratia marcescens, and Staphylococcus epidermidis.
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no explanation needed pls answer
quick.
Answer all short answer questions and the essay DQuestion 23 Crossing over occurs between..... Sister chromatids during prophase 1 of mitosis O Sater chromatics during prophase I of meiosis O Non-sist
Crossing over occurs between sister chromatids during prophase 1 of mitosis (option a).
Crossing over occurs during prophase 1 of meiosis. It is the exchange of genetic material between non-sister chromatids of homologous chromosomes. During meiosis, two rounds of cell division occur which produces haploid cells. During prophase 1 of meiosis, crossing over occurs between non-sister chromatids of homologous chromosomes. During this stage, the two homologous chromosomes exchange genetic material. This process leads to the creation of new combinations of genetic material and increases genetic diversity. The correct option is: Sister chromatids during prophase I of meiosis
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A mutation causing an addition or a deletion of one base pair resulted in the production of a nonfunctional mutant protein. The sequences of the normal and mutant proteins are given below. Normal: Met - Gly - Glu - Val - Asp Mutant: Met - Gly - Lys - Ser - lle - Lys - Trp - Arg - . Was this mutation cause by an insertion or a deletion? Below, fill in the codons in the coding sequence of the mRNA that is translated into the mutant protein. If more than one codon is possible, just enter a single codon. NH₂ Met Gly Lys Ser lle codons 5' AUG
The mutation that caused the nonfunctional mutant protein was due to an insertion.
The coding sequence of the mRNA that is translated into the mutant protein has one additional codon, thus the frameshift mutation that caused the protein to be nonfunctional can be inferred to have been an insertion mutation. A deletion mutation would have caused one of the amino acids to be missing, and the mRNA sequence to be shorter than the normal sequence.
Hence, the mutation causing the nonfunctional mutant protein was due to an insertion.Let us fill in the codons in the coding sequence of the mRNA that is translated into the mutant protein.NH₂ Met Gly Lys Ser lle codons 5' AUG GGUAAGUCAUCAGGAC The codons in the coding sequence of the mRNA that is translated into the mutant protein are 5' AUG GGUAAGUCAUCAGGAC.
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Prokaryotic cells must integrate numerous metabolic signals to balance catabolic and anabolic processes in the cell.For example,when nitrogen levels are low and amino acids are scarce, compounds called alpha-ketoacids inhibit the synthesis of cyclic AMP(cAMP).What impact would this have on the lac operon?(choose all that apply) increase expression of the lac operon inhibit binding of repressdr protein to the operator inhibit binding of CAP protein to the Cap Binding Site allow only some lac operon genes to be expressed,but not all inhibit expression of the lac operon 3points A transcription factor recruits a histone deacetylase enzyme to bind to a particular gene. The likely consequence of this is(choose all that apply Chromatin structure will become less compact due to removal of acetyl groups from histones Gene expressionwill decrease DNA nucleotides in this gene will have acetyl groups removed Chromatin structure will become more compact due to removal of acetyl groups from histones Geneexpression will increase
Impact on the lac operon when alpha-ketoacids inhibit the synthesis of cyclic AMPProkaryotic cells must integrate numerous metabolic signals to balance catabolic and anabolic processes in the cell.
For example, when nitrogen levels are low and amino acids are scarce, compounds called alpha-ketoacids inhibit the synthesis of cyclic AMP (cAMP).
The impact on the lac operon would be: inhibit binding of CAP protein to the Cap Binding Siteinhibit expression of the lac operonWhen cyclic AMP levels are low, CAP protein is not able to bind to the CAP Binding Site, which is upstream of the promoter region of the lac operon.
CAP protein is required for RNA polymerase to efficiently bind to the promoter, which results in the high-level transcription of the structural genes of the lac operon.When cAMP is low, the binding of CAP to the CAP site is inhibited, and there is less expression of the lac operon.
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Do we have to add a chemical to see the results for the urea
tubes? protein test
Yes
No
The urea tubes protein test is used to measure the concentration of protein in a patient's urine. There are two tubes: the protein test tube and the urea test tube.
The urea tube contains a chemical that reacts with urea, resulting in a color change. The protein test tube, on the other hand, contains a reagent that reacts with protein, resulting in a color change.The presence of protein in urine may be an indication of a variety of medical problems. These tests are used to detect and monitor these issues. As a result, it is essential to follow all of the test's instructions to achieve the desired outcome.
The chemical in the urea tube is used to make sure that the urea in the patient's urine is broken down so that the protein level can be determined accurately. In conclusion, we need to add a chemical to see the results for the urea tubes protein test. It is a critical part of the test, and if omitted, the results may not be accurate. a chemical is necessary to obtain the desired outcome.
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Question 1
The difference between a nucleoside and a nucleotide is that
A. nucleotides contain a different sugar compared to nucleosides.
B. the bases in nucleotides are attached to sugars at different carbons compared to nucleosides.
C. nucleosides are used to synthesize DNA, whereas nucleotides are used to synthesize RNA.
D. nucleotides contain one or more phosphate groups, whereas nucleosides have none.
E. nucleosides contain purine bases, whereas nucleotides contain pyrimidine bases.
Question 3
Which statement is true regarding the relationship between replication and transcription of DNA?
A. Replication requires both a template and a primer, whereas transcription requires only a template.
B. The polymerases for both require a Mn2+ cofactor for activity.
C. Copies of both DNA strands are made during both processes.
D. Both have extensive processes to correct errors.
E. Both utilize the same nucleotides.
Question 5
In eukaryotes, nucleosomes are formed by binding of DNA and histone proteins. Which of the following is NOT true regarding histone proteins?
A. H1 functions as a monomer
B. Histone proteins have five major classes: H1, H2A, H2B, H3, and H4
C. Positively coiled DNA is wrapped around a histone core to form nucleosome
D. H1, H2A, H3 and H4 form the nucleosome histone core.
E. They are found in the nucleus.
Question 1:
Nucleosides are compounds composed of a nitrogenous base and a sugar, but without the phosphate group. Nucleotides, on the other hand, contain all three: nitrogenous base, sugar, and phosphate group. Hence, the difference between a nucleoside and a nucleotide is that nucleotides contain one or more phosphate groups, whereas nucleosides have none. The correct option is D.
Question 3:
Replication requires both a template and a primer, whereas transcription requires only a template. This statement is true regarding the relationship between replication and transcription of DNA.Question 5:
H1 functions as a monomer is the option that is NOT true regarding histone proteins. The histone proteins are proteins that help to package the DNA into the nucleus of the cell. They are found in the nucleus, and the DNA is wrapped around a histone core to form nucleosome. The histones are the major protein component of chromatin. Histone proteins have five major classes: H1, H2A, H2B, H3, and H4, and H1, H2A, H3 and H4 form the nucleosome histone core. The positively coiled DNA is wrapped around a histone core to form nucleosome.
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The following sequence of DNA was digested with the restriction endonuclease EcoRl.
5'-CGCCGAATTCCGGGATGTCGAATCCGCCCGGGGAATTCATATTTTAGCA-3'
3' -GCGGCTTAAGGCCCTACAGCTTAGGCGGGCCCCTTAAGTATAAAATCGT - 5'
a) ECOR recognizes the sequence GAATTC and cut(s) between the G and the A. Mark the location of All the cuts on the above sequence.
b) What type of ends does EcoRl produce?
a) Based on the recognition sequence GAATTC for EcoRI, the cuts will occur between the G and the A nucleotides within the sequence. The cuts are marked with "^" below:
5'-CGCC^GAATTC^CGGGATGTCGAATCCGCCCGGGGAATTCATATTTTAGCA-3'
3' -GCGGCTTAA^GGCCCTACAGCTTAGGCGGGCCCCTTAAGTATAAAATCGT - 5'
b) EcoRI produces sticky ends. After digestion, the DNA fragments will have overhanging ends with single-stranded regions. In this case, the sticky ends will have the sequence 5'-AATT-3' on one strand and 3'-TTAA-5' on the complementary strand.
EcoRI is a commonly used restriction endonuclease derived from the bacterium Escherichia coli. It recognizes and cuts DNA at the specific sequence GAATTC. Here are some additional details about EcoRI:
Recognition sequence: EcoRI recognizes the palindromic sequence GAATTC. The sequence reads the same on both DNA strands when read in the 5' to 3' direction.
Cutting site: EcoRI cuts the DNA between the G and the A nucleotides within the recognition sequence. This results in the creation of two fragments with complementary sticky ends.
Sticky ends: EcoRI produces sticky ends after digestion. The sticky ends have single-stranded overhangs with the sequence 5'-AATT-3' on one strand and 3'-TTAA-5' on the complementary strand. These sticky ends can base pair with complementary sequences, facilitating the cloning and manipulation of DNA fragments.
Applications: EcoRI is commonly used in molecular biology techniques, such as DNA cloning, restriction mapping, and DNA fragment analysis. It is often used in combination with other restriction enzymes to generate compatible ends for DNA ligation.
DNA digestion: When DNA is digested with EcoRI, the enzyme cleaves the phosphodiester bonds in the DNA backbone, resulting in the fragmentation of the DNA molecule into smaller pieces.
It's important to note that EcoRI is just one of many restriction endonucleases available, each with its own recognition sequence and cutting characteristics.
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41The site of the formation of the primary structure for protein synthesis in animal cells is the
a) mitochondrionb) nucleusc) SER d) RERe) vacuole
42. Phospholipids can form all of the following structures in water except which one?
a) cell membranes b) bilayersc)nuclear membranes d) vesiclese) Bones cell membranes
The site of the formation of the primary structure for protein synthesis in animal cells is the ribosome. The site of the formation of the primary structure for protein synthesis in animal cells is the ribosome.
Ribosomes, the site of protein synthesis in cells, are composed of two subunits that are unequal in size. Both ribosomal subunits contain ribosomal RNA (rRNA) molecules and a number of ribosomal proteins that help to maintain the structure and function of the ribosome.
Therefore, option D is the answer.
Phospholipids can form all of the following structures in water except bones cell membranes. Phospholipids are the main structural component of cell membranes in living organisms. When in contact with water, these amphipathic molecules spontaneously self-organize into a bilayer to form a cell membrane. The two layers of a bilayer have opposing orientations of the phospholipid molecules that create a hydrophobic interior sandwiched between two hydrophilic surfaces.
They can also form vesicles or liposomes when a bilayer spontaneously closes to create an isolated compartment. However, bones cell membranes is not a structure that can be formed by phospholipids in water.
Therefore, option E is the answer.
Ribosomes are the site of the formation of the primary structure for protein synthesis in animal cells, while phospholipids can form all of the following structures in water except bones cell membranes.
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Which of the following is NOT a role of the kidneys? * 1 point regulates ion balance rids the body of metabolic waste egestion of nitrogenous wastes regulates water balance secretion of hormones involved in the production of RBCs Urea is produced * * 1 point by the liver in every cell of the body when amino acids are dephosphorylated by the kidneys by birds and reptiles
The kidneys are the pair of organs that perform a variety of important functions that are important for a healthy body. The primary roles of kidneys are the regulation of water balance, maintenance of acid-base balance, regulation of blood pressure, filtration of waste products from the body, and production of urine.
The kidney's main job is to filter the blood to remove excess waste products and fluids from the body.
The following functions are performed by the kidneys except for the secretion of hormones involved in the production of red blood cells.
Erythropoietin is a hormone that regulates the production of red blood cells in the body, and it is produced by the kidneys.
Kidneys regulate the body's ion balance by filtering the blood.
Kidneys remove metabolic waste products such as urea, uric acid, and creatinine from the body. Kidneys are involved in the egestion of nitrogenous wastes, which include excess urea, uric acid, and creatinine.
Kidneys are involved in regulating the water balance of the body by regulating the concentration of urine and maintaining blood pressure.
Urea is produced by the liver in every cell of the body when amino acids are dephosphorylated. Urea is a waste product that is filtered by the kidneys.
Birds and reptiles excrete nitrogenous waste products in the form of uric acid rather than urea, which is the case in mammals. Hence, this is not a role of the kidneys.
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Sensations of dynamic equilibrium are registered in the Select one: a. cochlea. b. vestibule. c. organ of Corti. d. semicircular ducts. e. tympanic membrane.
The sensations of dynamic equilibrium are registered in the semicircular ducts. The semicircular ducts are filled with fluid that moves in response to changes in the orientation of the head. This movement is detected by hair cells that are located within the ampulla of each semicircular duct.
The hair cells are stimulated when the fluid moves and this triggers the sensation of dynamic equilibrium.The vestibule is responsible for detecting sensations of static equilibrium and linear acceleration, while the cochlea is responsible for detecting sound waves. The organ of Corti is a structure within the cochlea that contains the hair cells responsible for detecting sound waves.
The tympanic membrane, or eardrum, is a thin layer of tissue that separates the outer ear from the middle ear and vibrates in response to sound waves.The semicircular ducts are part of the vestibular system, which is responsible for maintaining balance and spatial orientation. When the head moves, the fluid within the semicircular ducts moves in a way that corresponds to the movement of the head. This movement is detected by the hair cells, which then send signals to the brain to help us maintain our balance and stay oriented in space.In summary, the correct answer to this question is d. Semicircular ducts. This is because the sensations of dynamic equilibrium, which are responsible for maintaining balance during movement, are detected by hair cells located within the semicircular ducts.
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3. Fill in each of the blanks below with the correct term:
a) The presence of fat and acid in chyme stimulates the
__________________ to release ______________ and _______________
into the bloodstream
Major Component of Food (macromolecule) at ingestion: End product of chemical digestion (ie, absorbed as): Transported away from digestive system by 2. On the back of the page or on a separate page, c
The presence of fat and acid in chyme stimulates the small intestine to release secretin and cholecystokinin into the bloodstream.Secretin and cholecystokinin are hormones released by the small intestine
. These hormones are stimulated by the presence of fat and acid in chyme. Secretin stimulates the pancreas to release bicarbonate ions into the small intestine. Bicarbonate ions neutralize the acidic chyme, which helps protect the small intestine from damage. Cholecystokinin stimulates the gallbladder to release bile into the small intestine.
Bile is important for the digestion and absorption of fat.Major Component of Food (macromolecule) at ingestion:FatEnd product of chemical digestion (i.e., absorbed as):Fatty Acids and GlycerolTransported away from the digestive system by:Lymphatic System.
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About 12 years ago, my laboratory published a report on the X-ray crystal structure of a blue copper protein called rusticyanin. The structure of the folded protein is maintained by a large number of noncovalent bonds formed by the interactions of the individual side chains of the amino acids that comprise the protein. As examples of such interactions, it is evident that the side chains of eight different amino acids (Ala, Arg, Asp, Cys, Gln, Ile, Thr, and Val) happen to interact on a pair-wise basis to form four different types of noncovalent bonds (hydrophobic, electrostatic, hydrogen, and van der Waals) in the interior of the folded protein. Use the clues below and/or the information in your textbook to identify the pair of amino acids involved in each type of noncovalent bond. Then answer the questions on BrightSpace for Quiz 10. Clue #1 - Val, Asp, and Thr are involved in three different types of noncovalent bonds that do not include the van der Waals bond. Clue #2-The hydrophobic bond does not involve Arg or Ala. Clue #3 - The hydrogen bond does not involve Val or Ala. Clue #4 - Cys, which does not participate in a hydrophobic bond, does not interact with Thr in rusticyanin. Clue #5-Arg, which does not interact with Thr or Val in rusticyanin, isn't involved in a van der Waals bond. Clue #6-Asp and Ile aren't part of the hydrogen bond in the rusticyanin.
Based on the given clues, the amino acid pairs involved in each type of noncovalent bond in rusticyanin are as follows: hydrophobic bond - Thr and Val; electrostatic bond - Asp and Arg; hydrogen bond - Gln and Thr; van der Waals bond - Cys and Ile.
The clues provided help narrow down the amino acid pairs involved in each type of noncovalent bond in rusticyanin. Clue #1 states that Val, Asp, and Thr participate in three different types of noncovalent bonds excluding van der Waals. Therefore, Val and Thr are involved in a hydrophobic bond, while Asp and Thr form an electrostatic bond.
Clue #2 indicates that the hydrophobic bond does not include Arg or Ala. Therefore, the hydrophobic bond involves Val and Thr since they are the remaining options.
Clue #3 states that the hydrogen bond does not involve Val or Ala. As Val is excluded, the hydrogen bond must involve another amino acid pair. Based on the remaining options, Gln and Thr form the hydrogen bond.
Clue #4 mentions that Cys, which does not participate in a hydrophobic bond, does not interact with Thr. This implies that Cys is not involved in the hydrophobic bond between Val and Thr.
Clue #5 states that Arg, Thr, and Val are not involved in the van der Waals bond. Therefore, the van der Waals bond must involve other amino acid pairs. Since Cys and Thr are the remaining options, Cys and Thr form the van der Waals bond.
Finally, clue #6 indicates that Asp and Ile are not part of the hydrogen bond. This aligns with the earlier deduction that Gln and Thr form the hydrogen bond.
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Positioning of the first Met tRNA on the mRNA is a critical step in translation inititiation. Selection of the first correct AUG is achieved by a complex of Met tRNA with a. initiation factors
b. initiation factors plus poly A binding protein
c. small subunit ribosome d.small subunit ribosome plus initiation factors
The positioning of the first Met tRNA on the mRNA during translation initiation is a crucial step. The correct selection of the first AUG codon is achieved by a complex of Met tRNA with the small subunit ribosome plus initiation factors. This complex ensures the accurate initiation of protein synthesis.
Translation initiation is the process by which protein synthesis begins in cells. It involves the assembly of the ribosome, mRNA, and initiator tRNA at the start codon of the mRNA molecule. The first Met tRNA, carrying the amino acid methionine, plays a crucial role in this process.
To ensure accurate initiation, a complex is formed between the small subunit ribosome, the initiator tRNA, and several initiation factors. These initiation factors help in the proper positioning of the components and facilitate the recognition of the start codon. Among the initiation factors, one important factor is the initiation factor 2 (IF2) that interacts with the initiator tRNA and the small subunit ribosome.
The initiation complex scans the mRNA molecule until it reaches the correct start codon, which is typically AUG. The start codon is recognized by the anticodon of the initiator tRNA, which is base-paired with the AUG codon. The interaction between the Met tRNA and the start codon is facilitated by the small subunit ribosome and the initiation factors. Once the correct start codon is recognized, the large subunit of the ribosome joins the complex, and protein synthesis begins. The initiator tRNA occupies the P-site of the ribosome, ready to receive the next amino acid and initiate the elongation phase of translation.
In conclusion, the positioning of the first Met tRNA on the mRNA during translation initiation is achieved by a complex consisting of the small subunit ribosome plus initiation factors. This complex ensures the accurate selection of the first AUG codon and facilitates the proper initiation of protein synthesis.
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Dragonfly larvae are voracious predators that eat just about any living animal that can fit in their mouths - including small fish and other dragonflies. Liz wants to know whether dragonflies will eat each other if there are plenty of small fish around. She puts three dragonflies in a tank with no fish, and three dragonflies in a tank with lots of fish. She makes sure that the water temperature, the size of the dragonflies, and the size of the tanks are the same between the two tanks. After 24 hours, she counts how many dragonflies were eaten.
Liz's experiment demonstrated that when there are plenty of small fish around, dragonflies are more likely to engage in cannibalistic behavior due to heightened competition for resources.
Liz conducted an experiment to determine if dragonflies would eat each other when there were plenty of small fish available. She placed three dragonflies in a tank without fish and three dragonflies in a tank with lots of fish. After 24 hours, she observed that the dragonflies in the tank with fish exhibited cannibalistic behavior, while those in the tank without fish did not.
Dragonfly larvae are known for their predatory nature and their ability to consume various small animals, including other dragonflies. Liz set up two tanks with identical conditions, except for the presence or absence of small fish. In the tank without fish, the dragonflies did not resort to cannibalism, indicating that they may have sought alternative food sources or simply refrained from preying on each other in the absence of other options.
However, in the tank with an abundance of small fish, the dragonflies displayed cannibalistic behavior by consuming each other. This behavior could be attributed to increased competition for resources, where the availability of plentiful fish triggered predatory instincts and intensified the competition among the dragonflies for food. Consequently, the dragonflies turned to cannibalism as a means of securing sustenance.
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Research one genetic disorder, either something you have
experience with or something interesting, and discuss how it is
tied to meiosis. Include your understanding of how this disorder
occurs in the
One genetic disorder that is tied to meiosis is Down syndrome, also known as trisomy 21. It is caused by the presence of an extra copy of chromosome 21, which disrupts the normal chromosomal distribution during meiosis.
During meiosis, the process of cell division that produces gametes (sperm and eggs), chromosomes undergo recombination and segregation to create genetically diverse and haploid cells. However, in individuals with Down syndrome, there is an error in meiosis called nondisjunction, where chromosome 21 fails to separate properly. This results in one of the resulting gametes having two copies of chromosome 21 instead of one.
When a fertilized egg with an extra copy of chromosome 21 (trisomy) is formed, it leads to the development of Down syndrome. Individuals with Down syndrome typically exhibit physical characteristics such as distinct facial features, intellectual disabilities, and various health issues.
The occurrence of Down syndrome is directly linked to the abnormal distribution of chromosomes during meiosis, specifically the failure of proper separation of chromosome 21, resulting in an additional copy of this chromosome in the resulting offspring.
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