Green plants are the first living organism in a food chain. Where do plants get the energy that they pass along to the primary consumers in their food chains? A. from secondary consumers B. from the Sun C. from other plants D. from decomposersGreen plants are the first living organism in a food chain. Where do plants get the energy that they pass along to the primary consumers in their food chains? A. from secondary consumers B. from the Sun C. from other plants D. from decomposers

Answer:

CUU, CUC, UUG, UUA

Explanation:

Following codons result in leucine amino acid : UUA, UUG, CUU, CUC, CUA and CUG

Following codons result in phenylalanine amino acid : UUU and UUC

Answer: D.the parotid gland

Explanation:

The innervation of the parotid gland is by auriculotemporal nerve  and great auricular nerve  as sensory innervation , and  

the  parasympathetic innervation originated from glossopharyngeal nerve;which  synapse with otic ganglion;from this end point(the ganglion) the auriculotemporal nerve conduct parasympathetic fibres  to the  parotid gland.

The superior cervical  ganglion , innervated the parotid gland as the sympathetic innervation. It travels along  the  external carotid artery to reach the parotid gland.

therefore PAROTID GLAND IS NOT INNERVATED BY VAGUS NERVE.

All other options in the questions are innervated by the vagus nerve.

Vagus nerve has the longest  branch of all the cranial nerves, which extends from the  brain to the abdomen. As it exist the jugular  foremen  , it innervates the head, the neck and abdomen  to supply the above options a-c

The vagus nerve, which is part of the parasympathetic nervous system, does not innervate the parotid gland; instead, the parotid gland is innervated by the glossopharyngeal nerve.

The vagus nerve does not innervate the parotid gland. The vagus nerve is a crucial part of the parasympathetic nervous system, which controls the function of many internal organs. The vagus nerve innervates structures such as the kidneys, gallbladder, and the pancreas. In particular, to the pancreas, the autonomic nervous system controls the secretion of insulin and glucagon, indicating that both sympathetic and parasympathetic nerve endings are found in pancreatic islets. Parasympathetic neurons, which are part of the peripheral nervous system and include the vagus nerve, leave the central nervous system via cranial nerves or sacral regions of the spinal cord. These neurons synapse in ganglia that are very close to the organs they innervate. The parotid gland, however, is innervated by the glossopharyngeal nerve, not the vagus nerve.

Answer:

A. 38 mol of ATP is yielded during aerobic oxidation of glucose while only 2 ATP is yielded during anaerobic oxidation of glucose. This will cause the yeast cell to need 19 times more glucose anaerobically and to need less glucose aerobically.

(b) DNP is going to block the major step in aerobic ATP production causing the yeast cells to use about the same amount of glucose as anaerobic cells when compared to yeast cells without DNP present

Aminoacyl-tRNA synthetases ensure the correct amino acid is attached to the appropriate tRNA through mechanisms such as the high specificity of the active site and the proofreading features of some synthetases.

Aminoacyl-tRNA synthetases ensure that the correct amino acid is attached to the appropriate tRNA by using specific mechanisms. One mechanism is the high specificity of the active site in each aminoacyl-tRNA synthetase for the correct amino acid substrate. The synthetase binds to its cognate tRNA and recruits the correct amino acid to the enzyme's active site. Another mechanism is the proofreading feature in some aminoacyl-tRNA synthetases that recognizes and hydrolyzes incorrect amino acids to ensure the correct one is attached.

Answer:

The frequency of the allele is  high in  the  population

Explanation:

The selective pressure in this population is low light. Thus only plants with high tolerance for low light will be able to survive in this population. LLT gene plant has this trait.

Therefore the LLT gene plants  will have  higher rate of survival compare  to other clones at very low light intensity .

The frequency of expression of these gene will be high due to high survival rates in the population.

Answer:

The correct answer will be option-C

Explanation:

The autonomic nervous system is the system of the nerves which controls the automatic response of the body.

The ANS is categorized into two types one of which is the parasympathetic and sympathetic nervous system.

The parasympathetic nervous system gets activated in the relax conditions by producing hormones that relax the human mind and body.

The sympathetic nervous system is activated in the stress conditions which produces hormones which response wither in fight response or flight response.

Since these types show antagonistic approaches in the body, therefore, Option-C is the correct answer.

Answer:

maybe for me is answer is c

The characteristic related to sterile mules does not affect fitness since they cannot pass on their genes. Other characteristics either increase or decrease fitness based on survival and reproduction advantages or disadvantages.Option c is correct.

Let's analyze each characteristic with respect to how they affect fitness:

Therefore, the characteristic that would NOT increase or decrease the fitness of the organisms that possess it is related to sterile mules (option c).

Answer:

Option B. Sequence the aniridia and eyeless DNA sequence and regulators.

Explanation:

DNA sequencing:

It is the method of determining the sequence of nucleic acid. DNA sequence includes the method to determine the order of nucleotide sequences. Through the process of sequencing aniridia and eyeless DNA are sequenced and analysed on Gel electrophoresis. Sequencing similarity shows evidence that the two genes are functionally equivalent.

Best choice:

B. Sequence the eyeless and aniridia DNA sequence and regulators.

The experiment could provide evidence that the two genes are functionally equivalent - D. Introduce the mouse aniridia wild-type sequence into the fly to see whether fly's eyes develop.

is a human condition in which the eye has no iris.

Thus, The experiment could provide evidence that the two genes are functionally equivalent - D. Introduce the mouse aniridia wild-type sequence into the fly to see whether fly's eyes develop.

Learn more:

https://brainly.com/question/1893853

Answer: Option E - One of the animal’s major body axes would fail to develop normally.

Explanation:

Cytoplasmic determinants help the organs of the embryo to develop.

Hence, absence of cytoplasmic determinants would result in one of the animal’s major body axes failing to develop normally.

Answer: A. it is unclear whether or not warming of the planet is occurring

Explanation:

Climate change is a more accurate description of the increase in Earth’s temperature than "global warming," because it is unclear whether or not warming of the planet is occurring, which is present in Option A.

When the climate, such as the temperature, humidity pattern, and rain pattern, changes, this is referred to as climate change; however, global warming refers to the increase in global temperature, which does not fully explain the changed environment on Earth. Many biodiversities on Earth are affected by climate change: the seashore changes, rain patterns change, habitats change, and it is all due to climate change.

Hence, climate change is a more accurate description of the increase in Earth’s temperature than "global warming," because it is unclear whether or not warming of the planet is occurring, which is present in Option A.

Learn more about climate change here.

https://brainly.com/question/28779953

#SPJ5

Answer:

a change in the species composition of a community

Explanation:

Answer:

B: A change in the genetic makeup of a population

Explanation:

Evolution can be defined as any net directional change or any cumulative change in the characteristics of organisms or populations over many generations. It explicitly includes the origin as well as the spread of alleles, variants, trait values, or character states.

Answer:

(B) DNA polymerase I synthesizes DNA on lagging strands and DNA polymerase III synthesizes DNA on leading strands

Explanation:

Both the enzymes DNA polymerase I and DNA polymerase III involved in the process of DNA Replication with specialised functions. DNA polymerase I synthesize DNA on lagging strand where it degrades RNA primer and replace it with DNA. On the other hand, DNA polymerase III synthesize DNA from 5' to 3' end on the leading and lagging strand but stops at the RNA Primer.

Answer:

 DNA polymerase I synthesizes DNA on lagging strands and DNA polymerase III synthesizes DNA on leading strands

Explanation:

Answer:

The atmospheric pressure goes on decreasing as we go up above the sea-level. Therefore, the amount of oxygen also decreases at higher altitude. Due to this reason, mountaineers carry oxygen cylinders with them, while climbing high mountains

Explanation:

Answer:

Option D.

Explanation:

Both genes are linked to X chromosome. They are  recessive diseases and a heterozygous gene, which means that two different forms of a particular gene are inherited, one from each parent.

CB : Color blindness carrier, healthy

H: Hemophilia carrier, healthy

h: Disease

cb: Disease

Mom: X(CB/H) X(cb/h) (carrier)

Dad: X(cb/H) Y (color blind man, and  dominant for hemophilia - healthy)

Let's make a table

MOM/DAD |  X(CB/H) X(cb/h)   |

X(cb/H)Y    |   X(cb/H) X(CB/H)  |   Healthy girl for H, carrier for cb

X(cb/H)Y    |   X(cb/H) X(cb/h)   |    Healthy girl for H, sick for cb

X(cb/H)Y    |   Y  X(cb/h)    |  Boy sick for cb and h  

X(cb/H)Y    |   Y  X(CB/H)    |  Boy healthy for CB and H

1 probable case, over 4 possible cases

Answer:

D

Explanation:

A. If a genetic disease reduces fertility and the allele that causes the disease offers no other advantage, the allele will likely eventually disappear, due to natural selection.

This is true. If the disease reduces fertility, the likelihood of the affected individual passing it on to children is decreased. If there is no fitness advantage, it will slowly be reduced in the population by chance, because natural selection is not acting positively upon it

B. Natural selection does not favor individuals who are homozygous for the sickle-cell allele, because these individuals typically die before they are old enough to reproduce.

This is true, individuals carrying two copies of the sickle cell allele might be more resistant to malaria, but they also have a range of health problems that often cause early mortality or severely reduced quality of life, cancelling out the beneficial features of this allele.

C. Individuals who are heterozygous HbA/HbS are protected from malaria, and this is why sickle-cell disease persists in wetter, mosquito-ridden regions in Africa.

This is true. Malaria persists in certain regions of Africa because the conditions are favourable for the mosquito that carries the disease. The heterozygous HbA/HbS genotype is prevalent in African population because it protects individuals from malaria, giving them a fitness advantage. Therefore, the natural selection acts positively upon the sickle cell allele in these areas, and over time, it becomes more prevalent

D. In regions where malaria does not occur, individuals who are heterozygous HbA/HbS have a fitness advantage over those who are homozygous for the normal hemoglobin allele (HbA).

This is false. Without the selection pressure of malaria, there is no advantage of having a copy of the sickle cell allele over the normal allele.

In regions where malaria does not occur, individuals who are heterozygous

HbA/HbS have a fitness advantage over those who are hom ozygous for the

normal hemoglobin allele (HbA) is False.

The individuals who have heterozygous HbA/HbS only have an advantage in the aspect of malaria as it makes them less susceptible to the disease.

This is the only advantage it offers and it doesn't offer any special advantage

such as more fitness or increase in fertility.

Individuals with sickle cell die early thereby preventing natural selection as

they are mostly unable to reproduce before death.

Read more on https://brainly.com/question/14315794

Answer:

false

Explanation:

because enzyme has specific active site

Answer:

True

Explanation:

Enzymes works by binding with chemical reactants called substrates. There may be one or more substrates for each type of enzyme, depending on the particular chemical reaction.

Answer:

It probably get pink because it has 1/2 chance it has 1/4 change of being white and 1/4 chance of being red

Explanation:

The answer is option A "To prove that your work is correct." When you let peers review your work its making sure that your results/data are correct. When doing experiments to make sure that your results are valid you would do trials on top of that have your peers repeat the experiment with their own trails to make sure the data you get is correct.

Hope this helps.

The development of specialized cells and cellular cooperation made it possible for more complex, multicellular organisms to exist.

The evolutionary milestone that made it possible for more complex, multicellular organisms to exist was the development of specialized cells and cellular cooperation. As cells started to live together in colonies, some cells began to specialize in performing different functions, making the colony more efficient. This specialization allowed the cells to remain small while still carrying out specialized tasks, leading to the evolution of multicellular organisms. These organisms were bigger, more efficient, and capable of performing more complex functions than single-celled organisms.

Final answer:

The development of eukaryotic cells, cell specialization within colonies, and sexual reproduction were pivotal milestones in the evolution of multicellular organisms which led to the diverse array of life we see today.

Explanation:

The evolutionary milestone that made it possible for more complex, multicellular organisms to exist was the development of eukaryotic cells and later the advent of colonial organisms and cell specialization. Eukaryotic cells, which emerged about 2 billion years ago, have more complex structures like a nucleus, allowing for greater control over cellular functions. Another key development was the emergence of sexual reproduction over 1 billion years ago, which led to increased genetic variation and the potential for greater evolutionary adaptation.

As single-cell eukaryotes started forming colonies, some cells in these colonies began specializing in different functions. These specialized cells could perform tasks more efficiently, benefitting the organism as a whole and setting the stage for the evolution of true multicellularity. True multicellular plants appeared about 1 billion years ago, and true animals followed roughly 100 million years later.

Ultimately, these developments laid the foundation for the Cambrian Explosion, a period of rapid evolution around 540 million years ago during which most major animal phyla appeared. Multicellular life evolved over time through an increase in biodiversity and complexity. Organisms like Volvox illustrate the progression from solitary eukaryotic cells to more complex multicellular structures.

Answer:

The proper order is as follows-

1) A B cell differentiates from a lymphocyte stem cell, and the mature B cell expresses a specific type of B cell receptor on its cell membrane.

2) Gene expression is altered in the B cell, and the B cell begins to divide.

3) Several rounds of division occur, producing many B cells that all express the same B cell receptor.

4) The B cell's BCR (B cell receptor) binds to a foreign antigen with high specificity and high affinity.

5) Second messenger signaling is activated in the B cell.

The activation process of a B cell by a microbe includes differentiation from a lymphocyte stem cell, antigen binding by the B cell receptor, activation of signaling pathways, alteration of gene expression, and rounds of division producing B cells with identical receptors.

The activation of a B cell by a microbe involves a series of steps which must occur in a specific order for effective immune response. Listing these steps in the correct sequence provides a clear understanding of B cell activation:

These steps are critical for the body's adaptive immune system to mount a specific response against the antigen presented by the microbe. The ultimate goal of these steps is the production of plasma cells and memory B cells that can produce antibodies specific to the antigen and protect the host from future infections by the same pathogen.

Answer:

Explanation:

Number 1: The answer is A; Ariginase is responsible for the release of urea as product.

Number 2: The answer is B; Argininosuccinate synthetase requires ATP.

Number 3: The answer is D; Arginase is located in the mitochondrion

Number 4: The answer is B; Ornithine produced in the cytosol must first cross the inner mitochondrial membrane into the mitochondrial matrix where it is carbamylated

Answer:

C) igneous, sedimentary, and metamorphic rock.

Explanation:

Every rock can become a metamorphic rock (ignorant, sedimentary, or metamorphic). Once rocks are buried deep within the Earth at extreme temperatures and pressures, they can form new materials and textures without melting. As melting happens magma is formed,  beginning the rock cycle again.

Hence, option C is correct

Answer:

C

Explanation:

Metamorphic rocks form from igneous, sedimentary, and metamorphic rock. The agents that change pre-existing rocks are heat, pressure, and chemical activity. Sediments form sedimentary rocks; magma forms igneous rocks.

Answer:

[tex]27.8[/tex] mL of oxygen in [tex]100[/tex] ml of blood

Explanation:

It is proven that a healthy human being has in general [tex]20[/tex] grams of hemoglobin in  [tex]100[/tex] milliliters of blood.  

It is given that -

Amount of oxygen found in [tex]1[/tex] grams of hemoglobin is equal to [tex]1.39[/tex] milliliters of oxygen.

Thus, the total amount of oxygen in milliliters would be equal to product of total weight of hemoglobin and the total amount of oxygen in ml in one gram of hemoglobin.

[tex]= 20 * 1.39 \\= 27.8[/tex] mL

Answer:

Yes bacteria can survive if heating process is inadequate.

Explanation:

Most of the canned food is spoiled by thermophilic and mesophilic bacteria. These bacteria can survive the canning process if the can is inadequately heated. Most of them are able to produce gas which can cause bulging of can.

Clostridium species are mainly involved in the spoilage of canned food. C. thermosaccharolyticum is a thermophilic bacteria which spoil can food and evolve CO2 gas that cause bulging of can. Example of mesophilic bacteria that cause spoilage and swelling of can are C. botulinum, C. puterifaciens, etc.

Therefore thermophilic and mesophilic bacteria can survive the canning process if heat treatment and the temperature are not adequate.

Final answer:

Bacteria such as Clostridium botulinum could survive improper canning procedures, germinate in an anaerobic environment, and produce gas, causing the can to bulge, indicating possible botulinum toxin presence.

Explanation:

Yes, bacteria in the can could have survived the canning process and caused the sides to bulge. This is often due to the presence of anaerobic bacteria such as Clostridium botulinum, which can survive in low-oxygen environments like a sealed can. If the canning process was not properly conducted, the spores of such bacteria could remain viable, and when conditions inside the can become anaerobic, these spores can germinate and produce gas as a byproduct of their metabolism, resulting in the bulging of the can. This scenario is also a potential sign of the presence of botulinum toxin, which is highly toxic. It's important that the restaurant owner disposes of these cans safely and reviews their canning procedures to prevent potential foodborne illnesses.

During starvation, the body enhances gluconeogenesis, not glycolysis, to maintain blood glucose levels by generating glucose from non-carbohydrate sources.

During periods of starvation, the body enhances gluconeogenesis to generate glucose from non-carbohydrate sources, such as pyruvate, lactate, glycerol, and gluconeogenic amino acids. This pathway is crucial for maintaining blood glucose levels and providing energy, especially to the brain and other organs that rely heavily on glucose. Gluconeogenesis predominantly occurs in the liver and, to a lesser extent, in the kidneys and involves converting these precursors back into glucose. This process is particularly vital during starvation or fasting when dietary glucose is not available.

Glycolysis, on the other hand, is the pathway by which glucose is broken down into pyruvate, yielding small amounts of energy. Though both pathways share other enzymes and can conceptually be seen as reverses of each other, they are regulated independently to prevent both pathways from being active simultaneously, a phenomenon known as the 'futile cycle.' Therefore, during starvation, gluconeogenesis is enhanced, not glycolysis.

Answer:

The answer is B

Explanation:

In eukaryotes, most structural genes are found within operons.

The incorrect statement is 'B) In eukaryotes, most structural genes are found within operons.' This is because eukaryotic genes are generally not organized in operons, unlike prokaryotic genes.

The statement which is incorrect about the regulation of eukaryotic gene expression is 'B) In eukaryotes, most structural genes are found within operons.' This is because eukaryotic genes are generally not organized in operons. The concept of the operon, a functional unit of DNA containing clustered genes that are under control of a single regulatory signal or promoter, is more commonly associated with prokaryotic genetics.

The other options represent correct statements about eukaryotic gene expression. For instance, the nuclear membrane in eukaryotes does indeed enable additional layers of gene regulation. Additionally, the stability of eukaryotic mRNAs and the rate of their degradation are important factors in gene regulation. Lastly, posttranslational regulation of histones is a unique feature of eukaryotic cells.

https://brainly.com/question/29628670

#SPJ3

Answer

After inland population after migration allele frequency is 0.62 or 62%

Explanation:

Given,  

Coastal striped phenotype freq. = 0.22

ss = 0.22

[tex]q_{coastal} \times q_{coastal} = 0.22[/tex]

[tex]q_{2 coastal}[/tex]= 0.22

Similarly, inland striped phenotype freq. = 0.43

[tex]q_{2inland}[/tex] = 0.43

[tex]q_{coastal} = \sqrt{q_{2coastal}}[/tex]

= [tex]\sqrt{0.22}[/tex]

= 0.4690

[tex]q_{coastal}[/tex]= 0.47 i.e. 47%

[tex]q_{inland} = \sqrt{0.43}[/tex]

= 0.655

[tex]q_{inland}[/tex] = 0.66 i.e. 66%

the migration range (m) is given as 20%

m= 0.2

allele freq. after migration = pre migration + ∆q

here,                  

∆q = change in the allele frequency

or                    

migration of allele freq. from coastal to inland

=[tex]m(q_{coastal} - q_{inland})[/tex]

= 0.2 (0.47 – 0.66)  

=[tex]0.2 \times (- 0.191)[/tex]

= - 0.0382    

∆q = -0.04   i.e. 4%

Final answer:

In population 1, genetic drift likely caused the change in allele frequencies, while in population 2, natural selection likely caused the change.

Explanation:

In population 1, the change in allele frequencies is likely caused by genetic drift. Genetic drift is the random change in allele frequencies due to chance events, and it is more likely to occur in smaller populations, where chance can have a larger impact. The small population size and the fact that only half of the individuals reproduce suggest that genetic drift played a role in the change in allele frequencies in population 1.

In population 2, the change in allele frequencies is likely caused by natural selection. Natural selection is a process where certain traits or alleles are favored due to their beneficial effects on survival and reproduction. The larger population size and the fact that there is differential reproduction depending on the traits suggest that natural selection played a role in the change in allele frequencies in population 2.

Answer:

a) Tail length shows quantitative mode of inheritance. It is controlled by three pair of genes and each allele contributes a small effect. Length of tail varies according to the cumulative effect shown by all the alleles present. Let the three genes controlling the trait be A,B and C. Dominant allele contributes 5 cm of tail length whereas recessive allele contributes 1 cm of tail length.

Harvey = aabbcc = 1*6 = 6 cm

Erma = AABBCC = 5*6 = 30 cm

When Harvey and Erma mate : AABBCC X aabbbcc : AaBbCc (F1)

AaBbCc = (3*5) + (3*1) = 18 cm

b) AaBbCc ( 18 cm ) X aabbcc ( 6 cm ) = 8 type of offspring will be produced in 1:1:1:1:1:1:1:1 ratio :

abcabc, Abcabc, aBcabc, abCabc, ABcabc, aBCabc, AbCabc, ABCabc

Answer: Electron transfer in the ETC is coupled to proton transfer from the matrix to the intermembrane space.

Explanation:

The energy generated by the movement  of electrons through protein carriers at different energy levels(ETC)  is used to pump protons across the intramembrane to the matrix. Thus, if the electron transport stops, protons pumps stops, ATPs synthesis by the ATP-synthase stops

This shows a coupled reaction

Answer:

D

Explanation: