10 For each neurotransmitter, identify the functional class, and then indicate where the hormone is secreted. Neurotransmitter Functional Class Secretion Site acetylcholine nitric oxide glycine norepinephrine endorphins dopamine GABA serotonin glutamate

Answers

Answer 1

Neurotransmitter Functional Class Secretion Site acetylcholine nitric oxide glycine norepinephrine endorphins dopamine GABA serotonin glutamate are explained in details .

In general , Acetylcholine is an excitatory neurotransmitter that is involved in a variety of functions, including muscle movement, attention, learning, and memory. Nitric oxide is a gaseous neurotransmitter that acts as an inhibitor in the central and peripheral nervous systems. Dopamine is a modulatory neurotransmitter that is involved in a variety of functions, including movement, reward, motivation, and attention.

Also, GABA is an inhibitory neurotransmitter that is widely distributed throughout the central nervous system. Serotonin is a modulatory neurotransmitter that is involved in a wide range of functions, including mood, appetite, sleep, and cognition. Glutamate is an excitatory neurotransmitter that is involved in a variety of functions, including learning and memory.

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Related Questions

What kind of cells make up the wall of the ureters?

What kind of cells make up the wall of the bladder?

Answers

Explanation:

The ureteric wall is composed of three main of tissue: inner mucosa, middle muscle layer and outer serosa. The lining of the inner layer is transitional epithelium.

This is the layer of cells that lines the inside of the kidneys, ureters, bladder, and urethra. Cells in this layer are called urothelial cells or transitional cells.

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Suppose the rate of plant growth on Isle Royale supported in equilibrium moose population of 350 moose and this scenario there are no wolves present and the environment is stable. One day 200 additional moose arrived on the island. What would you predict the moose population size to be 30 years later?

Answers

If the habitat is steady and free of wolves, we anticipate there will be about 622.4 moose on the island in 30 years.

Why did the number of moose in Isle Royale decline?

The island's vegetation and predators have a direct impact on population fluctuations. More moose on the limited land mass causes over-browsing of the island's vegetation, which causes population declines due to malnutrition in the winter. The grey wolf is the only predator of island moose.

Why can moose survive on Island Royale's ecology in such greater numbers than wolves?

Isle Royale had a string of mild winters from 1963 to 1972. As a result, there are longer growing seasons and more vegetation available for the moose to consume. This makes it simpler for the moose to find food, which slowly increases the population. The wolf population on the island starts to fluctuate at this point.

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A human disease example in which a dominant allele that is lethal in homozygous state is Huntington’s. A person that is heterozygous for Huntington’s disease and a normal individual had four children together. What is your expected outcome for the surviving children (ratio-wise for the genotype)? What is the percentage of the children that are expected to survive? Draw a punnett square to support your answer.

Answers

The expected outcome for the surviving children of a heterozygous Huntington's disease parent and a normal parent is 50% chance of being carriers of the disease and 50% chance of not carrying the disease, with a 50% expected survival rate.

Huntington's disease is an autosomal dominant disorder caused by a mutation in the HTT gene. If an individual inherits one copy of the mutated gene, they will develop the disease, regardless of whether the other allele is normal or mutated.

In this scenario, the heterozygous parent has one normal allele and one mutated allele. When crossed with a normal individual, the Punnett square shows a 50% chance of passing on the mutated allele to each child.

Therefore, two of the four children are expected to be carriers of the disease, and the other two are expected to not carry the disease. Additionally, because the disease is lethal in homozygous individuals, the expected survival rate for the children is 50%.

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Which of the following did not contribute to Earth's present atmospheric concentrations of oxygen and carbon dioxide? Choose one: a. the evolution of eukaryotic organisms, which are more efficient at photosynthesis b. the evolution of multicellular organisms, which are more efficient at producing oxygen c. the evolution of cyanobacteria, which are photosynthetic single-celled organisms d. carbon dioxide sequestration due to biomass burial

Answers

The answer is d. Carbon dioxide sequestration due to biomass burial did not contribute to Earth's present atmospheric concentrations of oxygen and carbon dioxide.

The other options - the evolution of eukaryotic organisms, the evolution of multicellular organisms, and the evolution of cyanobacteria - all played a role in shaping the composition of Earth's atmosphere through their contributions to photosynthesis and oxygen production.

Carbon dioxide is the most commonly produced greenhouse gas. Carbon sequestration is the process of capturing and storing atmospheric carbon dioxide. It is one method of reducing the amount of carbon dioxide in the atmosphere with the goal of reducing global climate change.

The USGS is conducting assessments on two major types of carbon sequestration: geologic and biologic.

Forests, kelp beds, and other forms of plant life absorb carbon dioxide from the air as they grow, and bind it into biomass. However, these biological stores are considered volatile carbon sinks as the long-term sequestration cannot be guaranteed. For example, natural events, such as wildfires or disease, economic pressures and changing political priorities can result in the sequestered carbon being released back into the atmosphere.

Carbon dioxide that has been removed from the atmosphere can also be stored in the Earth's crust by injecting it into the subsurface, or in the form of insoluble carbonate salts (mineral sequestration). These methods are considered non-volatile because they remove carbon from the atmosphere and sequester it indefinitely and presumably for a considerable duration (thousands to millions of years).

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in a gene pool, the Z allele frequency is 89% and the z allele frequency is 11%. Determine the frequency of heterozygous (Zz) individuals in the population

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Answer:

Explanation:

The frequency of heterozygous individuals can be calculated using the Hardy-Weinberg equation:

p^2 + 2pq + q^2 = 1

where p is the frequency of one allele (Z in this case) and q is the frequency of the other allele (z).

Given that the Z allele frequency is 89%, we can calculate q as:

q = 1 - p

q = 1 - 0.89

q = 0.11

Using this value for q and the given value for p, we can calculate the frequency of heterozygous individuals as:

2pq = 2(0.89)(0.11) = 0.196

So, the frequency of heterozygous (Zz) individuals in the population is 0.196 or 19.6%.

why is it possible for a bacterial to make human protein such as insulin or a sea anemone protein such as the red fourescnet dye

Answers

It is possible for a bacterium to make human or sea anemone proteins because bacteria have the ability to take up and express foreign DNA. This process is known as genetic transformation or transfection.

Researchers can insert the gene for the desired protein into a plasmid, which is a small circular piece of DNA that can replicate independently in bacteria. The plasmid is then introduced into the bacteria, which take up the DNA and start producing the protein. This technique is commonly used to produce recombinant proteins for research, medical, or industrial purposes. Bacteria have also evolved to produce a wide variety of proteins, including enzymes, toxins, and pigments, as part of their natural metabolism or defense mechanisms.

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I am playing hide-and-seek with my daughter. I hide for 20 minutes in a box and the carbon dioxide levels are increasing. Which of the following is TRUE? A. higher CO2 levels lead to bronchodilation to decrease airway resistance B. I'm panicking and my adrenaline causes my airways to bronchoconstrict C. higher CO2 levels lead to bronchoconstriction to decrease airway resistance D. higher CO2 levels lead to bronchodilation to increase alfway resistance

Answers

Higher CO2 levels lead to bronchoconstriction to decrease airway resistance.

The correct answer is C

In general ,  if ventilation is inadequate, as can happen when one is in a small enclosed space like a box, CO2 levels can continue to rise and cause a variety of physiological responses, including bronchoconstriction. Bronchoconstriction is the narrowing of the airways in the lungs, which can make it more difficult to breathe.

So , If you are playing a game that involves hiding in a confined space, it is important to ensure that the space is well-ventilated and that you can easily breathe.

Hence , C is the correct option

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X is a digestive organ consisting of cells with a high concentration of rough endoplasmic reticulum for protein digestion. What is X? Explain your answer.

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A significant indication that an organ engaged in protein digestion is the pancreas in the presence of cells with high amounts of RER.

Why would a digestive enzyme-producing cell have a large amount of rough endoplasmic reticulum?

Since enzymes are proteins and salivary glands create a lot of enzymes like salivary amylase, these cells will contain a lot of rough ER. The rough endoplasmic reticulum is involved in protein synthesis.

What cells contain a large amount of rough endoplasmic reticulum?

Rough ER is more prevalent in cells that specialise in the manufacture of proteins, whereas smooth ER is more prevalent in cells that produce lipids (fats) and steroid hormones.

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for mice only exposed to damaged water bottles, what percentage of their oocytes developed abnormalities? please enter your answer here:

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For mice exposed only to damaged water bottles, the percentage of oocytes with abnormalities was 20.1% for glass bottles and 26.9% for plastic bottles. So it can be concluded that the damaged bottles affect to the oocytes of mice.

BPA (Bisphenol A) is a material used to make bottles and food containers. But many ask whether food containers and bottles that contain BPA are safe for our bodies? So an experiment was carried out on mice that were put in bottles made from BPA. Mice have genetics that are almost similar to humans. So that the effect can be compared. The results obtained are the more damaged the condition of the bottle, the oocytes in mice will function abnormally. This shows that food ingredients that use BPA can still have a negative impact on the body

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In the nutrient-poor water of the tropics, specialized dinoflagellates aid coral's success by:
a. providing carbon dioxide and phosphates for coral.
b. providing a safe and stable environment for coral.
c. causing coral bleaching.
d. providing oxygen, carbohydrates, and absorbing waste products.

Answers

The correct answer is d. providing oxygen, carbohydrates, and absorbing waste products. In the nutrient-poor water of the tropics, specialized dinoflagellates aid coral's success by providing oxygen, carbohydrates, and absorbing waste products.

The specialized dinoflagellates, known as zooxanthellae, reside within the tissues of coral and form a symbiotic relationship with the coral polyps. The dinoflagellates use the coral's waste products to photosynthesize and produce oxygen and carbohydrates, which are then utilized by the coral for its own metabolism and growth.

In turn, the coral provides the dinoflagellates with a safe and stable environment, access to sunlight for photosynthesis, and nutrients such as carbon dioxide and phosphates. This mutualistic relationship is crucial for the survival and success of both the coral and the dinoflagellates.

Coral bleaching occurs when the symbiotic relationship between the coral and the dinoflagellates breaks down, causing the coral to lose its colorful pigmentation and become more susceptible to disease and death. This breakdown can be caused by stressors such as changes in water temperature, pollution, and overfishing.

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in muscles during strenuous exercise, under anaerobic conditions lactic acid builds up due to the following reaction. The carbon atom indicated by the asterisk is (a) chiral (b) prochiral (c) achiral (d) both achiral and prochiral

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The carbon atom indicated by the asterisk is prochiral and achiral. so, option (b) and (c) is correct.

What is reaction ?

A chemical reaction is the transformation of one or more chemicals, known as reactants, into one or more new compounds, known as products. The change in concentration of any of the reactants or products per unit of time can be used to determine the rate or speed of a reaction. It is determined by the equation rate=time + concentration.

Exercise is physical activity that is organized, prescribed, and repeated with the goal of conditioning any area of the body. Exercise is crucial for physical rehabilitation as well as for maintaining fitness and enhancing health that helps our body in metabolic reactions.

Therefore, carbon atom indicated by the asterisk is prochiral and achiral. so, option (b) and (c) is correct.

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Question 43
Marks: 1
The field distribution piping should be surrounded with ______ and at least 2 inches deep under the pipe.
Choose one answer.

a. washed gravel, 3/4 inches to 2 1/2 inches

b. broken limestone, 1 inches to 2 inches

c. fine marble chips

d. a mixture of sand and gravel

Answers

The field distribution piping should be surrounded with A. washed gravel, 3/4 inches to 2 1/2 inches. and at least 2 inches deep under the pipe.  

This is because the field distribution piping is typically buried underground and needs to be protected from damage caused by soil movement or heavy objects. The washed gravel provides a layer of protection around the piping and allows water to easily flow through it, ensuring that the piping remains unclogged and fully functional. Additionally, the depth of the gravel should be at least 2 inches deep under the pipe to provide adequate support and stability.
It is important to note that the type of material used for the surrounding layer may vary depending on local building codes and regulations, as well as the specific requirements of the piping system being installed. However, in general, washed gravel is a common choice for field distribution piping because it is readily available, affordable, and effective.

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Obligatory exchange in animals Indicate whether these statements regarding obligatory exchange in animals are true or false.
1. Eliminating nitrogenous wastes, consuming and metabolizing food, and regulating body temperature are all examples of obligatory exchanges.
2. Mammals, amphibians, and some marine fishes produce uric acid or other nitrogenous wastes called purines.
3. The potential for water loss as a consequence of respiration is considerably greater in smaller animals.
4. Sweat is a hypoosmotic solution compared to blood.
5. Freshwater fishes gain salt and lose water when ventilating their gills.

Answers

All statements except statement 4 are all true regarding obligatory exchange in animals.
1. True
2. True
3. True
4. False
5. True

1. Eliminating nitrogenous wastes, consuming and metabolizing food, and regulating body temperature are all examples of obligatory exchanges. - True.

Obligatory exchanges are the processes that are necessary for the survival of an organism, and they cannot be avoided. Eliminating nitrogenous wastes, consuming and metabolizing food, and regulating body temperature are all examples of obligatory exchanges because they are essential for maintaining the basic physiological functions of an animal.

2. Mammals, amphibians, and some marine fishes produce uric acid or other nitrogenous wastes called purines. - True

Mammals, amphibians, and some marine fishes are examples of animals that excrete nitrogenous wastes in the form of uric acid or other purines. These compounds are less toxic than other forms of nitrogenous wastes and require less water to excrete.

3. The potential for water loss as a consequence of respiration is considerably greater in smaller animals. - True

Smaller animals have a higher surface area to volume ratio, which means that they lose more water through respiration compared to larger animals. This is because smaller animals have a relatively larger respiratory surface area in relation to their body size, and therefore, they have a greater potential for water loss through respiration.

4. Sweat is a hypoosmotic solution compared to blood. - False

Sweat is a hyperosmotic solution compared to blood. This means that sweat has a higher concentration of solutes compared to blood. The solutes in sweat include sodium, chloride, and potassium ions, which are actively transported from the blood into the sweat glands.

5. Freshwater fishes gain salt and lose water when ventilating their gills. - True

Freshwater fishes have a higher concentration of solutes in their body fluids compared to the surrounding freshwater environment. Therefore, when they ventilate their gills, they actively take up salt ions from the water while losing water through osmosis. To compensate for the loss of water, freshwater fishes drink large amounts of water and excrete large volumes of dilute urine.

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x. the bond angle in water is smaller than in ammonia because the atomic radius of oxygen is bigger than the one of nitrogen y. the bond angle in water is smaller than in ammo

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The statement "the bond angle in water is smaller than in ammonia because the atomic radius of oxygen is bigger than the one of nitrogen" is true.

The bond angle in water is smaller than in ammonia because of two reasons. Firstly, the atomic radius of oxygen is bigger than the one of nitrogen. This leads to greater repulsion between the lone pairs of electrons on the oxygen atom in water. Secondly, the oxygen atom in water is more electronegative than the nitrogen atom in ammonia, which leads to a stronger bond in water and a smaller bond angle. Therefore, the bond angle in water is smaller than in ammonia.

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Chloride is the main anion in extracellular fluid. an intracellular fluid ion. a positively charged ion. converted to chlorine in the intestinal trac

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The statement "Chloride is the main anion in extracellular fluid. an intracellular fluid ion. a positively charged ion. converted to chlorine in the intestinal tract" is mostly incorrect.

Chloride (Cl-) is indeed the main anion in extracellular fluid, where it plays a critical role in maintaining osmotic balance, pH balance, and electrical neutrality in the body. However, it is not an intracellular fluid ion, as it is primarily found outside of cells.

Chloride is a negatively charged ion, not a positively charged ion. It is often paired with positively charged ions, such as sodium (Na+) or potassium (K+), to form salts that can be transported across cell membranes.

Chloride is not converted to chlorine in the intestinal tract. Chlorine (Cl2) is a highly reactive gas that is not normally found in the body. Chloride ions can be absorbed by the intestines and used to form hydrochloric acid (HCl) in the stomach, which is important for digestion.

In summary, chloride is the main extracellular anion, is a negatively charged ion, is not found in high concentrations in intracellular fluid, and is not converted to chlorine in the intestinal tract.

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11. in prokaryotes, rna polymerase binds to nucleotide sequences known as ______ that are recognized by the corresponding sigma factor.

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In prokaryotes, RNA polymerase binds to specific nucleotide sequences known as promoters, that are recognized by the corresponding sigma factor.

Sigma factors are proteins that bind to RNA polymerase and direct it to specific promoters.

They recognize and bind to conserved DNA sequences within the promoter region, known as the -10 and -35 boxes, which are located approximately 10 and 35 base pairs upstream of the transcription start site, respectively.

The sigma factor guides the RNA polymerase to the promoter and positions it correctly, allowing for the initiation of transcription.

Different sigma factors recognize different sets of promoters, allowing for differential gene expression in response to environmental or developmental cues.

For example, in Escherichia coli, the housekeeping sigma factor sigma-70 recognizes a broad range of promoters, while alternative sigma factors such as sigma-32 are induced under stress conditions and recognize a distinct set of promoters.

The specific recognition of promoters by sigma factors is critical for the precise regulation of gene expression in prokaryotes.

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Q3.9. Suppose that, as you track the bison population described in the previous question, a new disease emerges, infecting adult bison. This disease increases the death rate of adults. If the disease persists in the population and has no other effect, how will the population dynamics of the herd change in the future? (Assume environmental conditions do not change.) The carrying capacity of the bison population will be lower than before. The birth rate of the bison population will be higher than before. The bison population will grow slower than before. The bison population will grow faster than before.

Answers

The bison population will grow slower than before due to the increased death rate of adults from the new disease, which will limit the population's size and reproductive potential.

What is bison population?

The carrying capacity of the bison population will also be lower than before due to the disease's impact on adult bison, further limiting population growth.

If a new disease emerges in the bison population, infecting and increasing the death rate of adult bison, the population dynamics of the herd will change in the future. The carrying capacity of the bison population will be lower than before, because the disease reduces the number of adults who can reproduce, and therefore limits the overall size of the population.

Moreover, the birth rate of the bison population may not necessarily be higher than before because the disease could also affect the reproductive ability of the bison, and even if it does not directly impact reproduction, the population may be limited by the lower number of adult bison that can mate.

As a result, the bison population will grow slower than before because of the increased death rate of adults due to the disease. In some cases, the population may even decline if the death rate exceeds the birth rate. Therefore, the correct answer is that the bison population will grow slower than before.

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Draw a Punnett Square for this test cross: EB eb; AP ap X eb eb; ap ap
Using your Punnett Square as reference, explain how this test cross will allow you to verify that the heterozygous individual produced all 4 possible gamete types (EB AP, EB ap, eb AP, eb ap) in equal frequencies during meiosis due to independent assortment

Answers

In the Punnett Square above, we can see that each of the four possible gamete types appears in equal frequency in the offspring, with each genotype occurring twice. This supports the idea that the heterozygous individual produced all four gamete types in equal frequencies during meiosis due to independent assortment.

E B  b

e b  b

The Punnett Square for the test cross between EB eb; AP ap X eb eb; ap ap would look like this:

eb eb

AP APEb/bap APEb/bap

ap apeb/bap apeb/bap

By performing a test cross between a heterozygous individual (EB eb; AP ap) and a homozygous recessive individual (eb eb; ap ap), we can determine the frequency at which the heterozygous individual produces each of the four possible gamete types (EB AP, EB ap, eb AP, eb ap). If the heterozygous individual produces these gamete types in equal frequencies due to independent assortment, we would expect each of the four possible genotypes to be equally represented in the offspring.

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Am I correct hurry!!!

Answers

Answer: Yes

Explanation:

Write a balanced equation for the conversion in the glyoxylate cycle of two acetyl units, as acetyl-CoA, to oxaloacetate.
O 2acetyl−CoA+2NAD++E−FAD+3H2O→oxaloacetate+2NADH+E−FADH2+2CoA−SH+2H+
O 2acetyl−CoA+NAD++2H2O→oxaloacetate+NADH+2CoA−SH+H+
O 2acetyl−CoA+2NAD++E−FADH2+2H2O→oxaloacetate+2NADH+E−FAD+2CoA−SH+2H+
O 2acetyl−CoA+2NADH+E−FAD+2H2O→oxaloacetate+2NAD++E−FADH2+2CoA−SH

Answers

The balanced equation for the conversion of two acetyl units, as acetyl-CoA, to oxaloacetate in the glyoxylate cycle is option A: 2 acetyl-CoA + NAD⁺ + FAD⁺ + 3 H₂O + E⁻ → oxaloacetate + 2 NADH + FADH₂ + 2 CoA-SH + 2 H⁺ + O₂.

This equation depicts how NAD⁺ and FAD⁺ work together to completely transform two molecules of acetyl-CoA into oxaloacetate. Additionally produced by the process are NADH and FADH₂, which can be employed in the electron transport chain to produce energy.

The electron carrier that moves electrons from NADH and FADH₂ to the electron transport chain is symbolized by the letter E. The process also uses oxygen, which serves as the last electron acceptor in the chain of electron transport.

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The blood vessels of largest diameter are the ________; the blood vessels with the thickest walls are the ________.
Select one:
a. veins : arteries
b. veins : veins
c. arteries : veins
d. arteries : arteries
e. arteries : arterioles

Answers

The blood vessels of largest diameter are the veins ; the blood vessels with the thickest walls are the arteries.

Option A is correct

In terms of diameter, which blood vessel is the largest?

Your aorta is your body's major blood vessel. The largest part of it is over a foot long and has an inch in diameter. Its diameter decreases to two centimetres as the aorta moves towards your pelvis.

Which is thicker, the artery or the vein?

Because the pressure of the blood flowing through your arteries is increased, they are thicker and more flexible. You have smaller, less flexible veins. Compared to arteries, veins can transport more blood for longer periods of time because of this configuration.

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Why does a heart chamber (lumen) get smaller and force the blood out through a valve when cardiac muscle is stimulated to shorten? a) Signals from voluntary motor neurons cause calcium to activate sarcomeres. b) Muscle fibers wrap around each of the chambers of the heart. c) Cardiac muscle does not shorten end-to-end but, rather, toward the middle. d) All of the above. e) None of the above.

Answers

A heart chamber (lumen) gets smaller and forces the blood out through a valve when cardiac muscle is stimulated to shorten). All of the above statements are correct.
Working of a cardiac muscle:
When a cardiac muscle is stimulated to shorten, signals from involuntary motor neurons cause the release of calcium, which activates sarcomeres within the muscle fibers. These sarcomeres then contract, causing the muscle fibers to shorten. Because the muscle fibers wrap around each of the heart chambers, the contraction of the fibers toward the middle of the chamber results in the chamber lumen getting smaller, which forces the blood out through a valve.

When the cardiac muscle is stimulated, the muscle fibers contract, which causes the heart chamber to decrease in size. This contraction forces the blood out through the appropriate valve, allowing for efficient blood circulation throughout the body. While the terms "sarcomere" and "motor neurons" are related to muscle function, they do not directly explain the phenomenon described in this question.

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17B.If we call the amount of DNA per genome x, identify a situation in diploid organisms where the amount of DNA per cell is equal to 2x.
A.in the nucleolar organizer
B.in cells in g1
C.in the kinetochores
D.in cells after s but prior to cell division
E.in gametes
17C.If we call the amount of DNA per genome x, identify a situation in diploid organisms where the amount of DNA per cell is equal to 4x.
A.in the nucleolar organizer
B.in cells in g1
C.in the kinetochores
D.in cells after s but prior to cell division
E.in gametes

Answers

17B. If we call the amount of DNA per genome x, a situation in diploid organisms where the amount of DNA per cell is equal to 2x is:
D. In cells after S phase but prior to cell division.

During the S phase of the cell cycle, DNA replication occurs, doubling the amount of DNA in the cell. Thus, after the S phase but before cell division, the cell has 2x the amount of DNA.

17C. If we call the amount of DNA per genome x, a situation in diploid organisms where the amount of DNA per cell is equal to 4x is:
B. In cells in G1.

In diploid organisms, the normal amount of DNA is 2x. However, when a cell undergoes a process called endoreduplication, its DNA replicates multiple times without cell division. This can result in a cell with 4x the amount of DNA. Endoreduplication can occur during the G1 phase in certain cell types and under specific conditions.

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How would you characterize the trauma to this individual's mandible? [37] O A perimortem sharp force O B perimortem blunt force O C antemortem blunt force O D antemortem sharp force

Answers

The answer is Option B: Perimortem Blunt Force. This means that the individual sustained a traumatic injury to their mandible at or near the time of death, likely caused by a blunt object striking their body.

What is Perimortem trauma?

Perimortem trauma refers to an injury that occurs at or near the time of death, and can be classified as either blunt or sharp force trauma. Blunt force trauma is typically caused by a blunt object striking the body, such as a hammer or a fist, and results in a crushing or contusion injury. In this case, the individual sustained a traumatic injury to their mandible, which is consistent with blunt force trauma.

Sharp force trauma is typically caused by a sharp object, such as a knife or a shard of glass, and results in a laceration or incision wound. In this case, the individual sustained a traumatic injury to their mandible, which is inconsistent with sharp force trauma.

Therefore, the correct answer is Option B: Perimortem Blunt Force.

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Approximately 45 percent of the human genome is derived from transposable elements, such as LINES and SINES.
(i) What are LINES and SINES?
1. (ii) How do LINES differ from SINES?
(iii) How is survival possible with this high a percentage of transposable elements in the human genome?

Answers

LINES (Long Interspersed Nuclear Elements) and SINES (Short Interspersed Nuclear Elements)are types of transposable elements in the human genome.

(i) LINES and SINES are both DNA sequences that can change their positions within the genome, leading to genetic variations.

(ii) LINES differ from SINES primarily in their length and mode of transposition. LINES are longer (usually 6-7 kb) and encode a reverse transcriptase enzyme. SINES are shorter (100-300 bp) and do not encode a reverse transcriptase enzyme.

(iii) Survival is possible with a high percentage of transposable elements in the human genome because not all of these elements are harmful. In some cases, they may provide beneficial genetic variations or be neutral in their effect.

Additionally, the human genome has evolved mechanisms to suppress the harmful effects of these elements, such as DNA repair systems and epigenetic modifications that can silence transposable elements.

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Identify each form of volcano and then fill in the chart with the appropriate information about each form.

Answers

Answer: Volcanoes are classified into three distinct categories based on the type of material that is expelled during an eruption. These are cinder cone, shield and composite volcanoes.

Cinder cone volcanoes are the most common type of volcano and are formed when small pieces of lava, ash and other volcanic debris are ejected into the air and then settle around the vent. These volcanoes are usually small in size and have steep sides.

Shield volcanoes are the largest type of volcano and are made up of layers of lava that have flowed from the vent. These volcanoes tend to be very wide and have a gentle slope.

Composite volcanoes are a combination of cinder cones and shield volcanoes. They are formed when alternating layers of lava and volcanic debris are ejected from the vent. These volcanoes are usually much taller than cinder cones and shield volcanoes and can reach heights of up to 8,000 meters.

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Beyond Mendel 151 Exercise D: One gene, multiple alleles Codominance Genotype Blood type In human ABO blood type there are three blood type phenotypes possible: Pr, PP. PP, P P, and i (Table 3). Understanding these blood types is important in blood transfusions, and it is due to the acceptance of the glycoproteins on the blood cellular membranes coded by the / gene. Similar to Mendelian genetics, i is recessive to both and P. But what happens when both and Palleles are in a gene? As it turns out. both alleles are activated. So blood cells of the genotype produce different glycoproteins with both sugars. This double expression is known as codominance. 21. What is the expected ratio of blood types in children from a type AB mother and a type O father? Blood type is autosomal (not sex-linked).

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The expected ratio of blood types in the children is 1:1 (Blood type A : Blood type B)

What is the expected ratio of blood types in children from a type AB mother and a type O father, considering blood type is autosomal?



To determine the expected ratio of blood types in children from a type AB mother and a type O father, we can perform a Punnett square analysis:

Step 1: Identify the genotypes of the parents. An AB mother has the genotype IAIB, while a type O father has the genotype ii.

Step 2: Create a Punnett square with the genotypes of the parents.

      IA   IB
 i  IAi  IBi
 i  IAi  IBi

Step 3: Analyze the Punnett square results. From the Punnett square, we see the following genotypes for the offspring:

- 2 IAi (Blood type A)
- 2 IBi (Blood type B)

Step 4: Determine the ratio of blood types. The expected ratio of blood types in the children is 1:1 (Blood type A : Blood type B). There will be no type AB or type O children in this case.

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what part of plasmid allows to pass to daughter cells

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Part of plasmid allows to pass to daughter cells is called as origin of replication .

During cell division, the replicated plasmid copies are partitioned into the two daughter cells, along with the rest of the bacterial chromosome. Some plasmids may also encode proteins that help to ensure equal distribution of plasmid copies to both daughter cells.  Some plasmids may also contain additional DNA sequences that aid in their segregation or ensure their stable inheritance in daughter cells.

Also, plasmids can persist and spread within bacterial populations, and can confer a variety of advantages to their hosts, such as antibiotic resistance, ability to metabolize certain nutrients, or ability to produce toxins.

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To increase the efficiency of transformation, cells will be placed in a 42°C water bath for 50 seconds during which step of the procedure?a. Heat shockb. Incubationc. Recoveryd. None of the above

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To increase the efficiency of transformation, cells will be placed in a 42°C water bath for 50 seconds during b. Incubation step of the procedure.

Depending on the context, incubation can signify a variety of things. It may refer to the procedure of incubating eggs, cells, microbes, or a disease, among other things.

In medical terminology, it can refer to the progression of an infectious disease from the time the virus enters the body to the manifestation of clinical symptoms. Incubation is a development process in science.

Depending on the context, incubation can refer to a variety of things in biology. It can refer to the progression of an illness from pathogen entry to the presentation of clinical symptoms. or it can be used to describe the time required for any certain developmental phase to occur.

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3. what is competitive inhibition? explain why oleic acid only worked halfway in bringing fatty acid levels down and why erucic acid succeeded in doing so.

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Competitive inhibition is a type of enzyme inhibition where an inhibitor molecule competes with the substrate for binding to the enzyme's active site.

This prevents or reduces the enzyme's ability to catalyze the reaction, thereby decreasing the overall reaction rate.
In the case of oleic acid and erucic acid, oleic acid only worked partially in reducing fatty acid levels because it may have had a weaker binding affinity to the enzyme's active site compared to the natural substrate. This allowed some of the substrates to still bind and be converted, leading to a moderate decrease in fatty acid levels. On the other hand, erucic acid succeeded in bringing fatty acid levels down significantly because it likely had a stronger binding affinity to the enzyme's active site. This led to a higher level of competitive inhibition, preventing more substrates from binding and being converted, resulting in a more substantial reduction in fatty acid levels.

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