Select all of the carbohydrates from the list below. [mark all correct answers] a. glycogen b. cellulose c. antibodies d. sucrose e. cholesterol f. estrogen

Answer:

Explanation:

The molecular and cellular mechanisms and processes that explain muscle contraction in striated muscle occur in the myofibril sarcomere. Their understanding depends on the organization's understanding of the structure of the sarcomere. In an imaginary experiment we first assemble an ideal sarcomere.

Remember that the myofibril is a set of cylindrical compartments that are located next to each other, constituting an elongated cylinder. Each of these cylinders is a sarcomere and borders its neighbor on a line or band called, line or band z.

On each side of the z line, thin cylindrical filaments that are actin filaments are inserted. Each actin filament is formed by a double strand of actin molecules that are rolled over each other. In this organization, actin is called actin F.

The myosin head is 'cocked' into a high-energy state due to ATP hydrolysis into ADP and Pi, which occurs after ATP binds to myosin and it detaches from actin.

The cause of the myosin head moving into the 'cocked' position after it is released from actin is ATP hydrolysis into ADP and Pi on the myosin head. When ATP binds to myosin, it results in the release of the myosin head from actin. Subsequently, the hydrolysis of ATP to ADP and inorganic phosphate (Pi) occurs due to the ATPase activity intrinsic to myosin. This process releases energy that changes the angle of the myosin head into the 'cocked' configuration. In this high-energy state, the myosin head has potential energy and is prepared for further movement upon binding to actin again, which is essential for muscle contraction.

Answer:

Option B, only by a basepair change within the restriction enzyme recognition site

Explanation:

A restriction fragment length polymorphism (RFLP) consists of alternative alleles with varying sizes of restriction fragments. In the traditional RFLPs, base pairs were changes at the restriction sites. These restriction sites comprises of nucleotide sequences that are identified by restriction enzymes. In RFLP analysis, the restriction fragments are created when restriction enzyme divide DNA into fragments. These restriction fragments are then separated while gel electrophoresis.

Before the advent of PCR, RFLPs (which were predominant form of  DNA variation) were used to analyze linkages.  

Hence, option B is correct

Answer: Option C) carbon source

Explanation:

The type of Carbon source is the distinction between heterotroph or autotroph. As autotrophs like green plants generate their food (glucose) from simple inorganic molecules like carbon dioxide (CO2) in the atmosphere, while heterotroph like man utilize carbon in carbohydrates such as starch that have been stored in the tissues of autotrophs.

Thus, the type of carbon source utilized distinguished heterotroph and autotrophs

Answer:

The statements in options A,B,C,D and E are all correct.

A. Invertebrates lack a back bone

B. Ecdysozoans typically posses a flexible exoskeleton that protects these animals from harmful external factors like water loss.

C. Deuterstomia, Lophotrochozoa and Ecdysozoa are classes of Bilaterians.

D. Animal A is a bilateral because bilateral embryos are triploblastic possessing three germ layers, are bilaterally symmetrical and lack a back bone.

E. All animal from studies are found to have a common ancestry.

Answer:

A) The turner syndrome is characterized by lacking half chromosome numbers which are also termed as the monosomy as there is only half the number of X linked chromosomes that are responsible for the colorblindness will be greater. The chances are 50% of having this disorder in such a case.

B) The correct answer would be no, as the error will be shown in only one of the due to n number of chromosomes present in both parents.

C) Anaphase II of meiosis II it takes places as here only the strands are pulled to opposite poles of the cell

.

D) Assuming it as Klinefelter man with colorblindness has normal parents then,

a)double XX +Y , the colorblind gene is recessive in XX and Y. or recessive in XX but dominating Y only rules out the other recessive.

b) Explanation is similar as B)

c) Due to a nondisjunction event during meiosis, I or meiosis II in the female X chromosome is still present in it.

Answer: Option C.

All steroids contain 4 ring region.

Explanation:

Steroids are drug like or biological compound that look like cortisol hormone. Steroids have four linked carbon ring and their rings are fused together. Steriod are hydrophobic and are not soluble in water. They have short tail. Steroids are important cell components and they are signaling molecules.

Answer:

The organism that can live deep beneath the earth surface despite intense pressure heat lack of water and sunlight might be Nematodes.

Explanation:

Answer:

The most recent common ancestor of all currently living organisms is the last universal ancestor, which lived about 3.9 billion years ago. ... 6,331 groups of genes common to all living animals have been identified; these may have arisen from a single common ancestor that lived 650 million years ago in the Precambrian.

Answer:

The genetically based phenotypic  ratio for of Gold: Silver: Bronze = 9:1:6

The expected number of gold-horned dragons is = 144

The expected number of silver-horned dragons is = 16

The expected number of bronze-horned dragons is = 96

Explanation:

Given that; F2 generation consisted of:

147 gold

17 silver

92 bronze.

Total autosomal genes control horn color in dragons = 256

When we conducted the punnet square for the Pure-breedinggold-horned dragons were mated with the  pure-breeding silver-horneddragons, then intercrossed them for the F2 generation, It is seen that;

The genetically based phenotypic  ratio for of Gold: Silver: Bronze = 9:1:6

∴

The expected  number of gold-horned dragon = [tex]256*\frac{9}{16}[/tex]

= 144

The expected number of silver- horned dragon = [tex]256*\frac{1}{16}[/tex]

= 16

The expected number of Bronze-horned dragon = [tex]256*\frac{6}{16}[/tex]

= 96

Null Hypothesis = The observed ratio of Gold:Siver:Bronze

=144:16:96

=9:1:6

Observed          Expected               (OF - EF)²                 [tex]\frac{(OF-EF)^2}{EF}[/tex]

Frequency         Frequency

(OF)                    (EF)

147                       144                           9                                0.062500                    

17                         16                              1                                0.062500

92                       96                             16                               0.166667

Total:                                                                                      0.291667

Since Degree of Freedom = 2

Our P-Value = 0.864

∴ Our P. Value is very high that we accept the null hypothesis

Answer: "Decreasing the salt concentration of the solution lowers DNA's melting point (Tm)" is not a true statement

Explanation:

Increasing salt concentration would lower the DNA's melting point (Tm), not otherwise.

For instance:

- In 8M urea (8M means 8 Moles per dm3), Tm is decreased by nearly 20°C.

- 95% formamide at room temperature would completely denature the double stranded DNA.

Thus, higher concentration of salts like urea or formamide lowers Tm, not otherwise

Answer:C. smooth ER

Explanation:the endoplasmic reticulum is a membrane bound organelle found in the cytoplasm of the cell.it has a highly folded appearance.

Its function in the cell is the transportation of cellular products.

There are two types of endoplasmic reticulum;the rough endoplasmic reticulum and the smooth endoplasmic reticulum.

The rough endoplasmic reticulum have ribosomes attached to them ,giving them a granular appearance.the ribosomes synthesis proteins,which the rough endoplasmic reticulum transports outside or within the cell.

The smooth endoplasmic reticulum do not have ribosomes attached to it.its functions is to synthesis lipids.

It is also involved in the production of steroid hormones in the adrenal cortex and endocrine glands

Large amounts of this organelle C. Smooth ER Therefore , C. smooth ER is correct .

Smooth Endoplasmic Reticulum (Smooth ER):

The smooth ER is an organelle involved in various functions, one of which is the synthesis of lipids and steroids, including cortisol.

Steroid hormones like cortisol are lipids, and their synthesis primarily occurs in the smooth ER of cells.

In the adrenal cortex, cells are specialized to produce steroid hormones such as cortisol.

Cortisol is a crucial steroid hormone involved in the body's response to stress and helps regulate various physiological processes.

Cortisol Production:

The production of cortisol starts with cholesterol, which is transformed into cortisol through a series of enzymatic reactions, predominantly occurring in the smooth ER of the adrenal cortex cells.

The enzymes responsible for the synthesis of cortisol are predominantly located in the smooth ER membranes.

During stressful situations, the body signals the adrenal cortex to increase cortisol production.

The cells in the adrenal cortex respond by synthesizing more cortisol, leading to an increase in the smooth ER activity and volume to accommodate the higher demand for steroid hormone synthesis.

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Since, the relative frequency is incorrectly mentioned in the question. The correct relative frequency table is attached below.

Answer:

20.

Explanation:

The genotype with the least recombinant frequency will represent the double cross overs.

The double cross overs progeny are a+ b+ c-(2%) and a- b-c+(2%).

The percentage of the recombinant frequency determined the distance between the genes. In the double crossovers, the b gene gas been exchanged and present in the middle.

The single recombinant crossovers as compared with the parents are a+ b+ c+ (8%) and  a-b-c-(8%).

Distance between the gene a and b = Single cross overs + double cross overs

Distance between the gene a and b = 8 + 8 +2 +2 = 20.

Therefore, the distance distance between the gene a and b is 20 centi morgan.

Answer: Option A. They have both polymers of glucose

Explanation:

Starch and cellulose are both polymers of glucose. They have similar structure, Starch and cellulose are two similar polymers. They are both made from the same monomer, glucose, and have the same glucose-based repeat units. They consists of long chains of glucose molecules connected to (1-4)-glycosidic bonds. Glycosidic bonds are the standard way of attaching things to glucose. The (1-4) bit simply means that the glucose molecules in the chain are connected to each other to the 1st and 4th carbon in the glucose ring opposite each other.

The key similarity between glycogen and cellulose is that both are polymers of glucose.

Glycogen:

It is a polymer of glucose that is stored in animals as a storage of energy.

Cellulose:

Therefore, the key similarity between glycogen and cellulose is that both are polymers of glucose.

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Answer:

conservative replication model

Explanation:

In their experiment, Meselson and Stahl found that the DNA duplexes present after the first round of replication had intermediate density. This occurred since the semiconservative process of DNA replication of one DNA molecule (having both strands with 15N) forms two DNA duplexes each with one parental strand (15N) and one newly formed strand (14N).

If they had found two duplexes of two different density, this would have supported the conservative replication model. In this case, the DNA replication of the parent DNA molecule would have formed two DNA duplexes. One DNA molecule would have both the parental DNA strands with 15N while the other DNA duplex would have both newly formed strands with 14N.

If Meselson and Stahl had observed two distinct densities after the first generation using CsCl gradient analysis, it would have supported the conservative replication model. However, their actual findings supported the semiconservative replication model.

If Meselson and Stahl had used CsCl gradient analysis and identified DNA molecules with two distinct densities after the first generation, the model of DNA replication that would have been supported by this data is the conservative replication model. In this model, the parental DNA strands (blue) would remain associated in one DNA molecule while the new daughter strands (red) would remain associated in newly formed DNA molecules. However, Meselson and Stahl actually found a single band after one generation, which disproved the conservative model and supported the semiconservative replication model.

Answer:

These options are true about DNA.

A. The 5' to 3' orientation of the new strand will depend upon where it is in the replication bubble relative to the position where replication first starts.

B. The new strand is the opposite of the template strand.

C. The new strand is an exact complement to the template strand.

Explanation:

Since the two strands of a DNA double helix are antiparallel, this 5′-to-3′ DNA synthesis can take place continuously on only one of the strands at a replication fork (the leading strand). On the lagging strand, short DNA fragments must be made by a “backstitching” process. The opposite strand with a base sequence directly corresponding to the mRNA sequence is refereed as  coding strand. See images for clarification.

If you want to study more here is the reference:

Alberts B, Johnson A, Lewis J, et al. Molecular Biology of the Cell. 4th edition. New York: Garland Science; 2002. DNA Replication Mechanisms.

The new strand formed during DNA replication is an exact complement to the template strand.

The correct statement regarding DNA replication is C. The new strand is an exact complement to the template strand. DNA replication is a semi-conservative process where each of the original parent DNA strands acts as the template for the synthesis of a new complementary strand. The parent DNA strands separate, and each strand serves as a template for the synthesis of a new strand. Each base on the parent strand pairs with its complementary base on the new strand, following the base-pairing rules (A with T and G with C).

Therefore, the new strand formed during DNA replication is an exact complement to the template strand. In other words, it has the opposite nucleotide sequence of the template strand, with the same specific adenine (A) to thymine (T) and guanine (G) to cytosine (C) ratios.

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Answer:

Yes. the Integral membrane will be affected.

Explanation:

Generally, Ionic detergents have hydrophilic head group which can be either negatively charged or positively charged. If treated with plasma membrane, it masks the native charge of the protein, colonizing the entire charges of the protein, converting the overall charge  to its own.

To be specific SSD  is anionic. It therefore adds overall negative  charge(anion) to the entire protein charges, even if they have isoelectric points. ''just like the HIV-RNA genome which  undergo retro-transcription of  the entire human DNA genome to its own HIV- genome of the infected host!''.

This disrupts  the hydrogen bonds, hydrophobic interactions and other non-covalent bonds of protein , thus  the 3-Dimensional protein structure of tertiary protein and therefore of the integral membrane proteins . Denaturation of  protein structure, and therefore the conformation protein function  results.With resulting   separation of the protein molecules based on their sizes.

Answer:

Explanation:

a, The genetic counselor should  explain that color-blindness is a sex-linked disorder, that is its  expression is related to a particular sex-cells.

a) The percentage is 0% . This is because your husband is normal, so no sex-linked alleleis attached to his only X-chromosomes.However either of your X-chromosomes can bear the allele for color blind. Since a girl child sex-chromosomes combination is XX, and your husband X chromosomes is normal,hence your daughters can only be carries (XCX, XCX)like you  if they inherited any of your X -chromosomes color blind allele.But none will be colorblind.

b)Because you are carrier for this alllele, and your husband is normal;  chances are all your sons   be   colourblind  is 50% proportion(YXC/YXC).  This is because your husband Y chromosomes determines a male child, and you can  bear the defective(carrier allele)  for  colourblind  on either of your X-chromosmes to give a male child as XY. Thus either of the  male child  assuming  with Mendelian fashion of inheritance, will be colour blind in 50% proportion.

No. A girl child can only be  a carrier for color blindness  if the  inherited the color blind gene from her carrier mother  or the father is color-blind. None of this is present in this scenario.  The two parents are normal Therefore there is no chance of their daughter emerging a carrier.

A genetic counselor would tell the parents that (a) the percentage of having a daughter who is color-blind is 0% and  (b) the percentage of having a son who is color-blind is 50%.

When considering the genetic possibilities for a couple where the female is a carrier of the color-blindness gene and the male has normal vision, genetic counselors would provide the following insights:

The percentage of having a daughter who is color-blind is 0%. This is because for a female to be color-blind, she must inherit two color-blindness genes – one from each parent. In this scenario, the father can only pass on a normal vision gene.

The percentage of having a son who is color-blind is 50%. Since males have only one X chromosome, inherited from their mother, they will be color-blind if that X chromosome carries the color-blindness gene.

For a different couple, both with normal vision, their daughter can still be a carrier for color-blindness if the mother is a carrier or if the father's mother is a carrier. This is because the mother can pass a carrier X chromosome to the daughter, or the father can pass an X chromosome that he inherited from his color-blindness carrier mother.

Answer:

mass(g) = 0.55114g

Explanation:

Given that;

Molarity (M) 100mM = 0.1M

Volume (V) = 1mL

                  =  1.0 × 10⁻³ Litre

numbers of moles =  Molarity × Volume

                               = 0.1M × 1.0 × 10⁻³ L

                               = 0.001

                               = 1.0 × 10⁻³ mol

Now, to determine the mass of ATP (in solid form) that we need to weigh;

we have our numbers of moles to be =[tex]\frac{mass(g)}{molarmass(g)}[/tex]

where;

numbers of moles = 1.0 × 10⁻³ mol

molar mass = 551.14

mass(g) = numbers of moles × molar mass

mass(g) = 1.0 × 10⁻³ mol × 551.14

mass(g) = 0.55114g

∴ 0.55114g ATP(in solid form) is required to be weighed  in order to make 1 mL of stock solution with a concentration of 100 mM ATP.

Answer:

C. coccoid-shaped.

Explanation:

MreB protein serves as function as actin proteins do in the eukaryotic cells. MreB protein is involved in maintaining the cell shape. It is observed in many rod-shaped bacteria and archaea such as Bacillus subtilis. MreB polymerizes to form a spiral around the inside periphery of the cell and maintain the elongated shape of the cell. A bacterium that is not able to produce functional MreB protein cannot maintain the rod shape of its cell and is coccoid-shaped.

Answer:

No.

Explanation:

When the set of chromosomes are duplicated, it means the chromosomes will be double the number.

However the genetic information will not change. It will remain the same.

Duplication of chromosomes is usually occurs among the interphase stage of mitosis where chromosomes will duplicate to ensure the formation of two identical daughter cells.

In these cells there will be no addition or variation in genetic information.

Final answer:

A cell with duplicated chromosomes doesn't contain more genetic information than before; it simply has two identical copies of each chromosome, called sister chromatids. The total DNA in the cell is increased, but genetic content remains consistent. This replication ensures that each daughter cell gets a complete genetic set after cell division.

Explanation:

If a cell contains a set of duplicated chromosomes, it does not contain more genetic information than it did before the chromosomes were duplicated. During DNA replication, each chromosome in the cell creates an exact copy of itself, known as sister chromatids, which are attached at a region called the centromere. While the chromosome number remains the same, for instance in humans (n = 46), the physical amount of DNA within the cell is actually doubled. However, in terms of genetic content, the information stays the same, it's just that each chromosome now consists of two identical chromatids.

During the cell cycle, specifically in the S phase, the DNA replication occurs to prepare a cell for division into two cells. This process is crucial because it ensures that each daughter cell receives a complete set of the organism's genome. In human cells, after replication, there still are 46 chromosomes, but each chromosome is now made up of two sister chromatids. Therefore, after cell division during mitosis, each cell will have the same amount of genetic material, identical to the original parent cell, assuring the continuity of genetic information.

Answer:

Three reading frames

Explanation:

Translation of mRNA always happen in one direction from the 5' end to the 3' end of the RNA strand.

Reading frame refers to the grouping of three consecutive bases to form a codon that can constitute an amino acid.

There are six possible reading frames in any nucleotide sequence.

Three from the 3' to the 5' end and three possible reading frames from the 5' to the 3' end.

As mentioned earlier, translation in mRNA happens in one direction therefore the three possible reading frames are;

An mRNA sequence can be translated into a protein in three possible reading frames, therefore, for the given sequence that can be initiated anywhere, there are three possible reading frames.

In the realm of molecular biology, an mRNA sequence can be translated into a protein in three possible reading frames. Each reading frame will read the sequence from a different starting point, thereby creating a unique series of codons, and potentially, a different protein sequence. Hence, for an mRNA sequence such as 5'- CAGAUCUAAUGCUUAUCGGAU-3' that can be translated anywhere in a laboratory setting, it means there are 3 possible reading frames. Each frame begins from a different nucleotide within the first three (frame 1 from C, frame 2 from A, frame 3 from G) and continues in triplets from there on.

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Answer:

D

Explanation:

Lamark believed in the inheritance of acquired characteristics. That is, that if an individual's body or organs changed in some way during the course of their life time (due to the environment or some other pressure), that these characteristics could be passed on to the next generation.

This was his theory of evolution. Therefore, if, slowly elephants started using their trunks to an advantage more, they would start to develop and grow. Lamark believed these acquired traits would be passed on to the next generation. We now know this not to be true, and random, selectively advantageous mutations in DNA are what cause evolution over time.

Answer:

a. The mtDNA of Anna Anderson bore no resemblance to that of Tsarina Alexandra

c. Tsarina Alexandria's mtDNA was found to be a match to that of the teenage girl.

Explanation:

Mitochondria contain their own DNA known as mtDNA, a strand which is inherited maternally. mtDNA can be used to find maternal ancestry and cannot be passed down by a paternal parent.

This information provides evidence given that the remains of the teenage girl had mtDNA that was identical to the mother, Tsarina Alexandra. It also gave evidence as to why Anna Anderson's claim of being Anastasia were false as the mtDNA of her and Tsarina Alexandra were not similar.

As to why the other answers cannot support the hypothesis, mtDNA is a maternally passed-down strand making the father, Tsar Nicholas Romanov, from having identical mtDNA to his children. On the other hand, if the teenage girl were to not have matching mtDNA to that of Tsuarina's mtDNA, this would disprove the theory of the girl being related to her.

While the teenage boy also had matching mtDNA with the girl, this only proves that the two were related to one another but not necessarily related to Tsarina unless the mtDNA of all three were proven identical.

The statements supporting the hypothesis concerning the killing of Princess Anastasia with her family in 1918 are stated below:

a. The mtDNA of Anna Anderson bore no resemblance to that of Tsarina Alexandra.  

c. Tsarina Alexandria's mtDNA was found to be a match to that of the teenage girl.  

e. The mtDNA of the teenage girl and boy matched each other.

Thus, the 2007 discovery unequivocally confirmed the hypothesis that Princess Anastasia was killed alongside her family in 1918 during the Russian revolution.

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Answer:

The potential antibiotic is a competitive inhibitor of the glucose converting enzyme and could be an effective solution for bacterial infections.

Explanation:

Enzyme kinetics mainly deals with the study of the rate of reaction of the enzyme. Different factors that can affects the enzyme rate are also studied in enzyme kinetics.

The competitive inhibitors of the enzyme do not show any effect on the Vmax value of the enzyme and binds to the enzyme only. These inhibitors do not have ability to binds with enzyme substrate complex. The increase in the enzyme and substrate concentration can remove the inhibitor affect.

Thus, the correct answer is option (b).

The potential antibiotic is acting as a noncompetitive inhibitor since higher glucose concentrations do not affect the Vmax, suggesting the antibiotic changes the enzyme's conformation rather than competing with glucose for the active site. So the correct option is c.

The finding that the potential antibiotic slows down the breakdown of glucose by a bacterial enzyme but that a higher concentration of glucose does not affect the Vmax (maximum rate of enzyme activity) indicates the antibiotic is likely acting as a noncompetitive inhibitor. A competitive inhibitor would have a different effect: the Vmax could potentially still be reached if sufficient additional substrate (in this case, glucose) were added, as competitive inhibitors can be outcompeted by high concentrations of the substrate. Since adding more glucose did not change the Vmax, this suggests that the potential antibiotic is not a competitive inhibitor but rather implies that the antibiotic binds at a site other than the active site, thereby altering the enzyme's conformation and affecting its activity without directly blocking the substrate from binding. Therefore, the correct characterization of this finding would be option c: The potential antibiotic is a noncompetitive inhibitor of the enzyme and likely changes the shape of the active site.

Answer:

Energy and Cellular Space

When gene Gene expression at( transnational level )  is regulated it ensures energy and  cellular space conservation, If a gene  were to be  regulated at each time  after transcription, then significant amount of ATPs beyond the synthetic capacity of the cells will be needed, the cells will  need large surface to accommodate the  mechanism s. Thus  regulation  saves more energy and space to regulate gene expression. by turning on  genes when needed to expressed and off when not needed.

Sequence of Gene

In addition,  for the  timely synthesis of  exact copies of protein needed  by the cells   for various cellular activities;  it is important  for cells to regulate and control how the DNA  is translated to the required proteins. If this mechanisms were not regulated  deletion ,  addition of  nitrogenous bases  in  gene sequence  during translation may lead to mutations and  therefore  wrong coding of the needed protein in the cells.

Protein Quantity

Furthermore, the need to know the quantity of protein to synthesize, when to stop the synthesis,  necessitated  regulation of the process.If required amount is not expressed wrong  amino acids units will be synthesized leading to abnormalities in hormones and enzymes.

Explanation:

Answer: option B) Sympatric speciation is best described as a random event that disrupts the allele frequencies in a population

Explanation:

Sympatric speciation is an event/situation whereby organisms of the same species:

- live in the same territory or nearby territories ( i.e do not live in geographical isolation)

- DO NOT interbreed, but select a sexual mate from a much diverse territory to yield new species or offsprings.

This sexual selection then results in generations of offsprings that are genetically different from the rest of the same species due to uneven gene flow or disruption of alleles among the population of same species.

Thus, only option B is true.

Answer:

O Gln replaced by Glu or Asn

Explanation:

Answer:

1. Thylakoids 2. PHB Granules 3. Carboxysomes

Explanation:

1. Thylakoids are membrane bounded compartments present in bacteria for light dependednt reactions.

2. PHB Granules help in carbon fixation

3. Carboxysomes help to retain carbon when enough supply isn't available.

Answer: Option 1,2 and 3.

Thykaloids, PHB granules and carboxysomes.

Explanation:

Carboxysomes consist of polyhedral protein and enzymes Rubisco which is important to supply carbon and fix it.

Thykaloids are membrane bound part of chloroplast which is the site of light dependent reaction during photosynthesis.

PHB granules are important component which help to fix carbon .

Answer:

A) molecular

Explanation:

Prokaryotes have 70S type of ribosomes. The small ribosomal subunit of ribosomes has some conserved sequences. This subunit is similar in the closely related species. On the other hand, the structure of the small ribosomal subunit is different in the organisms that are distantly related.  

Microbiologist Carl Woese analyzed the small ribosomal subunits of some bacteria and Archaeans and found distinct differences. On the basis of the composition of this biomolecule, prokaryotes were divided into eubacteria and archaea.  

Final answer:

Molecular evidence, especially differences in cell membrane structure and SSU rRNA sequences, has led to prokaryotes being classified into two separate domains: Bacteria and Archaea, which differ significantly from each other and from Eukarya.

Explanation:

The evidence that has recently made it necessary to assign the prokaryotes to either of two different domains, rather than assigning all prokaryotes to the same kingdom, is molecular evidence. Advances in genetic analysis have revealed significant genetic differences between two groups of prokaryotes, leading to the classification into two separate domains: Bacteria and Archaea. These domains are based on differences in the structure of cell membranes and in ribosomal RNA (rRNA), specifically the sequences of small-subunit ribosomal RNA (SSU rRNA). While both domains consist of organisms with prokaryotic cells, lacking a nucleus and true membrane-bound organelles, they are as different from each other as they are from the third domain, Eukarya, which includes all eukaryotic organisms with membrane-bound organelles and a nucleus.