Answer:
The phenotypic variation for the trait is continuous
Explanation:
Genetically speaking, quantitative traits are controlled by many genes, classes are not easily distinguishable and there is a continuous distribution of the phenotype. These characteristics refer to measurements of quantities (weights, volumes, measurements: kg, m, cm, g, m2, etc.).
In other words, quantitative characteristics are those that exhibit continuous variations and are partly of non-genetic origin; that is, they are greatly affected by the environment.
According to the graph, which of these statements is true?
a. This enzyme works best at very low temperatures.
b. This enzyme works best at very high temperatures.
c. This enzyme works equally well at all temperatures.
d. This enzyme works best at middle temperatures.
Answer:
The correct answer is D
Explanation:
That's why in the graph the best reaction of the enzyme is on 40° C.
On low temperatures the enzyme activity is too low.
On very high temperatures it fall, so the enzyme works better in the middle temperatures.
In a population of flowers growing in a meadow, C1 and C2 are autosomal codominant alleles that control flower color. The alleles are polymorphic in the population, with f (C1) = 0.9 and f (C2) = 0.1. Flowers that are C1C1 are yellow, orange flowers are C1C2, and C2C2 flowers are red. A storm blows a new species of hungry insects into the meadow, and they begin to eat yellow and orange flowers but not red flowers. The predation exerts strong natural selection on the flower population, resulting in relative fitness values of C1C1 = 0.30, C1C2 = 0.60, and C2C2 = 1.0.a.Assuming the population begins in H?W equilibrium, what is C1 allele frequency after one generation of natural selection?b.Assuming the population begins in H?W equilibrium, what is C2 allele frequency after one generation of natural selection?c.Assuming random mating takes place among survivors, what is the genotype C1C1 frequency in the second generation?d.Assuming random mating takes place among survivors, what is the genotype C1C2 frequency in the second generation?e.Assuming random mating takes place among survivors, what is the genotype C2C2 frequency in the second generation?
Final answer:
The allele frequencies of C1 and C2 and the genotype frequencies in a population of flowers are influenced by autosomal codominant alleles and natural selection. Calculations for changes in allele and genotype frequencies involve the initial frequencies, relative fitness values, and the Hardy-Weinberg principle, but exact values require additional data.
Explanation:
In a population of flowers with autosomal codominant alleles influencing flower color, the C1 and C2 alleles contribute to different phenotypes. Using the given allele frequencies and relative fitness values, we can calculate the impact of natural selection on this population.
a. C1 allele frequency after one generation of natural selection
To calculate the C1 allele frequency after one generation of selection, we must multiply the initial frequency by the relative fitness and then normalize it. However, without the actual population numbers or total fitness value, we can't provide a specific numerical answer.
b. C2 allele frequency after one generation of natural selection
Similarly, the C2 allele frequency is calculated by paying attention to the initial frequency and the impact of the relative fitness. As the C2C2 individuals have a relative fitness of 1.0 and are not being eaten, the C2 allele is likely to increase in frequency.
c. Genotype C1C1 frequency in the second generation
Assuming random mating among survivors of the first generation, the C1C1 frequency can be calculated using the Hardy-Weinberg principle. However, the exact frequency would need further calculation with the revised allele frequencies after the first selection event.
d. Genotype C1C2 frequency in the second generation
The frequency of the C1C2 genotype would also be calculated according to the Hardy-Weinberg equilibrium equation as 2pq, reflecting the genotype's expected proportion in the population.
e. Genotype C2C2 frequency in the second generation
The C2C2 genotype frequency would increase in the second generation, assuming no other evolutionary forces come into play and random mating occurs, we predict this using the Hardy-Weinberg principle (q²).
plants make their own food. The chemical for this process is shown by the following equation CO2 + H2O+energy>C6H12+O2 what are the products in this chemical reaction
Riparian zones are important to the natural environment because they _______. a. contain pollution from runoff b. reduce soil erosion c. support diverse organisms d. all of the above Please select the best answer from the choices provided A B C D
Answer:
The correct answer will be option-D
Explanation:
A riparian zone is the zone formed at the meeting area of land with water mostly from the lakes, ponds and the river. The plants growing in the riparian zones are known as the riparian vegetation.
The riparian zones prove useful to natural environment and humans as the growing vegetation help bind the soil which reduces soil erosion. It also reduce pollution level in the water bodies as it contains the pollution from the run off.
The riparian zones provides habitat to a variety of plants mainly from bryophytes and pteridophytes and animals which can live in the riparian zones.
Thus, option-D is the correct answer.
Answer:
the correct answer is D ALL OF THE ABOVE
Which of the following statements is correct concerning the spinal cord?A. The white matter contains cell bodies for spinal nuclei.B. Damage to sensory tracts in the spinal cord leads to paralysis.C. Just like the cerebrum, the gray matter is found on the superficial surfaces.D. Spinal nerves have mixed motor and sensory function.
Answer:
D. Spinal nerves have mixed motor and sensory function.
Explanation:
spinal's nerves are mixed nerves, which means that they carry sensory and motor information. They carry sensory information to the central nervous system to give a motor answer that will travel through the spinal nerves to specific muscles. The White matter, which is peripheral in the spinal cord, contains axons while the gray matter, which is central in the spinal cord, contains cell bodies.
Spinal nerves have mixed motor and sensory function is the statements is correct concerning the spinal cord. Thus, option (d) is correct.
The spinal cord is essential for the movement of nerve impulses from the brain to the rest of the body. It transmits impulses for pressure, temperature, movement, feeling, and pain.
Gray matter and white matter both make up the spinal cord, with the gray matter being central and the white matter being on either side. While nerve fibres that carry messages are found in the white matter, the gray matter houses the neuronal cell bodies.
As a result, the significance of the concerning the spinal cord are the aforementioned. Therefore, option (d) is correct.
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Which gland or organ is not strictly classified as an endocrine gland?a) thyroid glandb) adrenal glandc) pancreasd) pineal glande) pituitary gland
Answer:
The correct answer will be option-C
Explanation:
Endocrine glands are the organs of the endocrine system which control the functions of the body by directly secreting the chemical messengers (hormones) into the bloodstream which can act on the distant organs (target organs).
The main endocrine glands of the human body are the pituitary glands present in the brain, pineal gland in the brain, adrenal gland in kidney and the thyroid gland in the neck but the pancreas act as both endocrine and exocrine gland.
Eighty-five percent of the mass of the pancreas secretes digestive enzymes and is considered exocrine whereas only fifteen percent is considered the endocrine as it secretes the insulin hormone.
Thus, Option-C is the correct answer.
Answer:
Pancreas (Ans. C)
Explanation:
Pancreas gland: It is a glandular organ situated at the upper abdomen part of the body and it's behave as a two types of glands in one, like endocrine (hormones producing) and exocrine (producing digestive enzymes).
The pancreas gland secrets two types of hormones one is insulin, and second is glycogen which are helping to control blood sugar levels, function as an endocrine gland.
The pancreas gland excretes the enzymes which are helping in breakdown of lipids, proteins, nucleic acids, and carbohydrates which are present in food, function as an exocrine gland.
So, because of that pancreas gland is not strictly classified as an endocrine gland.
Which of the following statements about valves in the heart is/are true? A. A valve enables blood to only flow in one direction. B. A valve keeps blood from flowing in a reverse direction. C. All of the valves open when the blood pressure on one side of the valve is higher than on the other side of the valve. D. Statements A and B are correct. Statement C is incorrect. E. Statements A, B, and C are correct.
Answer: Option D is the correct answer.
The correct statements about valves are;The heart valves enable blood to flow in one direction.The valves keep blood in flowing in reverse direction.
Explanation:
Heart valves are thin tissue paper membrane that is attached to the heart. The heart valves and chambers are lined with endocardium.The heart valves is divided into four which are;
1. The two atrioventricular valves , the biscupid and triscupid valves which are between the upper chambers of the atria and the lower chambers of the ventricles
2. The two semilunar valves, the aortic and the pulmonary valves which are in the arteries leaving the heart. The biscupid and the aortic valves are in the left heart while the pulmonary and triscupid valves are in the right heart. During ventriculsr systole when pressure rises in the left ventricle and it is greater in the aorta, the aortic valves then open and allow blood to leave in through the left ventricle in the aorta.
The statement which is true about valves in the heart is: Choice D.
A valve enables blood to only flow in one directionA valve keeps blood from flowing in a reverse direction.Discussion:
Heart valves by definition are thin tissue membranes attached to the heart. The heart valves and chambers are lined with endocardium.
The heart valves are divided into four which are;
The two atrioventricular valves , the biscupid and triscupid valves.The two semilunar valves, the aortic and the pulmonary valves located in the arteries leaving the heart.All of which are characterized by enabling blood flow only in one direction and keeping blood from flowing in the reverse direction.
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Why is conserving biodiversity important? Choose all that apply.
protecting endangered species
protecting habitat diversity
maintaining genetic diversity
preserving heirloom varieties of food crops
Answer:
The correct options are :
protecting endangered species protecting habitat diversitymaintaining genetic diversityExplanation:
Biodiversity can be described as the different varieties of plants and animals which are present in a habitat. If biodiversity wasn't conserved then survival of most plants and animals species would become difficult whenever changes occurred. Without biodiversity, degradation of a habitat would occur. Hence, the conservation of biodiversity is very important for protecting the wild-life animals and plants. Biodiversity boosts up an ecosystem. No matter how small an organism is, their conservation is important for the maintenance of biodiversity.
Conserving biodiversity is important for protecting endangered species, maintaining ecosystems, ensuring the adaptability of species through genetic diversity, and ensuring food security through preservation of heirloom crop varieties.
Conserving biodiversity is critical for several intertwined reasons. Protecting endangered species ensures the survival of organisms that may have unique ecological roles or genetic traits beneficial to the ecosystem or human society. Protecting habitat diversity helps maintain the health and integrity of ecosystems, which in turn supports a variety of life forms. Maintaining genetic diversity within species is crucial for their adaptability and survival in the face of environmental changes, including climate change. Lastly, preserving heirloom varieties of food crops is important for food security and agricultural sustainability, as these varieties can be more resilient to pests, diseases, and changing climate conditions.
Colorium is an autosomal dominant trait in Nutonian flies (identical to earth fruit flies in every way). There are two alleles at this locus:F = Dominant allele; flies with this allele cannot observe the color Fuschia; these flies have the Colorium phenotype.+ = Wild type allele; flies who are homozygous for this allele can observe the color Fuschia; these flies do not have the Colorium phenotype.A cross of a true breeding male with Colorium and a true breeding female without Colorium produces F1 offspring that all have the Colorium phenotype. When a complementation cross is performed (with true breeding flies), we expect the following results: A. Half of the F1 offspring will have the Colorium phenotype.B. None of the F1 offspring will have the Colorium phenotype.C. All the F1 offspring will have the Colorium phenotype.D. Half of the female F1 offspring will have the Colorium phenotype.E. Only Fuschia-colored Nutonian flies will have the Colorium phenotype.
Answer:
Half of the F1 offspring will have the Colorium phenotype
Explanation:
The Colorium has an autosomal dominant trait, so we can say the genotype of colorium phenotype is either OO or Oo and the non-colorium is oo.
In the initial cross(F1), the cross between male with colorium (OO or Oo) and female without colorium (oo) will be:
Let use the cross between Oo × oo
we will have: Oo, Oo, oo, oo (check the document below to view the punnet square of the cross)
From the results above, only half of the individuals get colorium, but in the question it is stated that the breeding produces F1 offspring that all have the Colorium phenotype.
Let's look at another cross between OO × oo
we will have: Oo,Oo,Oo,Oo (check the document below to view the punnet square of the cross)
From the above cross, all the F1 generation having colorium phenotype.
This implies that the genotype of colorium phenotype is OO
True breeding implies that the parents are homozygous and not heterozygous . As such If we make a complementation cross with true breeding flies.(i.e a true breeding female without Colorium) and the product of the F1 Ggeneration, we wil have:
the complementary cross between Oo × oo
which are: Oo,Oo,oo,oo (check the document below to view the punnet square of the cross)
Therefore, we conclude that Half of the F1 offspring will have the Colorium phenotype
The Punnett square predicts the ratio of genotypes in the offspring, based on the genotypes of the parents. The Punnett square below examines the chance of offspring having freckles, which is a dominant trait. A Punnett square is shown. The columns are labeled Upper F and f. The rows are labeled Upper F and f. Clockwise from upper left the boxes contain: Upper F Upper F, Upper F f, Upper F f, f f. Based on the Punnett square, what is the probability that the offspring will have freckles?
Answer:
According to the description, the punnet square can be drawn as follows:
F f
F FF Ff
f Ff ff
The results of the punnet squares show that there is a 75% chance for the children to have freckles. As freckles is a trait which can arise from just a single allele, hence we can say that is is a dominant trait.
The children from this cross have 25% chance of being homozygous for the freckles trait. There is a 50% chance that the children will be heterozygous for freckles trait and there is a 25% chance that the children will not have freckles.
Answer:
C. 75%
Explanation:
Any help would be appreciated! Will give brainliest!!
Answer:
hey sebastian!
Explanation:
well the 4 is d) and 5 is a)
5. a)Crossing over occurs during prophase I of meiosis before tetrads are aligned along the equator in metaphase I. By meiosis II, only sister chromatids remain and homologous chromosomes have been moved to separate cells.
Irwin’s sells a particular model of fan, with most of the sales being made in the summer months. Irwin’s makes a one-time purchase of the fans prior to each summer season at a cost of $40 each and sells each fan for $60. Any fans unsold at the end of the summer season are marked down to $29 and sold in a special fall sale. Virtually all marked-down fans are sold. The following is the number of sales of fans during the past 10 summers: 30, 50, 30, 60, 10, 40, 30, 30, 20, 40.
Estimate themean and variance of the demad for fans each summer.
Answer:
answer is in the image below
Explanation:
James Marcia developed a system by which adolescents can be classified into one of (our identity statuses, according to whether they have (1) made a thorough exploration (and/or experienced a crisis") or (2) made a "commitment" in life. The identity status which would best be described as "no conflict, no crisis no clue" would be the identity foreclosure status.-permissive the identity diffusion status.-neglectful the identity achievement status.-Authoritative the identity foreclosure status.-coercive, domineering
Answer:1 premiussie 2 neglectful
Explanation:
Sorry
In peas, tall plants (T) are completely dominant over short plants (t). You cross two heterozygous pea plants Use a Punnett square to determine the expected genotypic and phenotypic ratios of the offspring.What is the male pea plant's genotype?What is the female pea plant's genotype?What are the male pea plant's gametes?What are the female pea plant's gametes?What is the expected genotypic ratio of the offspring?What is the expected phenotypic ratio of the offspring?
Answers and Explanation:
Find enclosed the Punnet square.
T= dominant allele
t= recessive allele
Tt= heterozygous genotype
TT and tt= homozygous genotype
- The male pea plant's genotype is Tt (heterozygous)
- The female pea plant's genotype is Tt (heterozygous)
- Male gametes: T and t
- Female gametes: T and t
- The expected genotypic ratio of the offpring will be:
TT: Tt: tt ⇒ 1: 2: 1
1/4 of the offpring will be TT genotype (dominant homozygous), 1/2 of the offpring will be Tt (heterozygous) genotype and 1/4 of the offpring will be tt genotype (recessive homozygous).
- The expected phenotypic ratio of the offpring will be:
tall : short ⇒ 3 : 1
3/4 of the offpring will be tall (TT and Tt) and the restant 1/4 will be short (tt).
The immune system Choose one:
A. is nonspecific in its responses to invaders.
B. is composed entirely of cells, rather than tissues and organs.
C. kills all nonself cells.
D. is a system that differentiates self from nonself to neutralize harmful invaders.
Answer:
The correct answer is D. is a system that differentiates self from nonself to neutralize harmful invaders.
Explanation:
A defense system that protects the host body from pathogen infection is called the immune system. This immune system is made up of many different barriers which helps in preventing illness from pathogen attack.
Physical and chemical barriers provide the first line of defense to the body for example skin, mucous membrane, lysozyme in saliva provide first line of defence. Second line of defense is provided by non-specific immune cells like mast cells, macrophages, dendritic cells, etc.
The third line of defense is provided by pathogen-specific immune cells like T lymphocytes and B lymphocytes. These cells have the ability to differentiate self and non-self cell and kills the non-self cell that come from outside the body.
The concentration of agarose gel affects the resolution of DNA separation. For a standard agarose gel electrophoresis, a 0.8% gives good separation or resolution of large 5–10kb DNA fragments, while 2% gel gives good resolution for small 0.2-1kb fragments. 1% gels is often used for a standard electrophoresis. If you have very similar sized DNA molecules that are running too close together on an agarose gel, what solution would you apply to resolve this issue?
Answer:
Use a higher % agarose gel.
Explanation:
Agarose gels have a porous matrix. The higher the concentration of agarose, the smaller the pores, so larger DNA molecules will have more difficulty moving through the gel and they will run slower than small DNA molecules.
The higher % agarose gel has thus a better resolving power (the measurable interval between two entities -the DNA bands- is smaller). For that reason, a 2% agarose gel will allow you to differentiate better between two bands of close molecular weight, if you let the DNA fragments run long enough.
In the scheme of feeding bacteria to worms to induce an RNAi response in worms, explain the purpose of the following components: lac promoter incorporated into the genome of E. coli, T7 gene incorporated into the genome of E. coli, and T7 promoter on the plasmid introduced into E. coli.
Answer:
lac promoter incorporated into the genome of E. coli, = for the repression of the gene
T7 gene incorporated into the genome of E. coli,+ for the formation of T7 gene
and T7 promoter on the plasmid introduced into E. coli= for the attachment of Polymerase to transcriped RNA from 5 to 3 direction
Explanation:
Answer:
For repression of gene the lac parameters must be incorporated into genome of E.coli
Where for the formation T7 gene,T7 gene must be incorporated into genome of E.coli
For attachment of polymerase to transcript RNA from 5 to 3 direction the T7 on the placimid must be introduced into E.coli
The first step in the catabolism of amino acids is the removal of the nitrogen as ammonia, forming a keto acid that can enter one of the carbon catabolic pathways. The alpha-keto acid pyruvate can be formed from the amino acids alanine, cysteine, glycine, serine and threonine. Consider the route for alanine catabolism. Anine reacts with to produce pyruvate and. This reaction is catalyzed by aspartate aminotransferase. alanine aminotransferase. alanine dehydrogenase. The substrate for the first step can be regenerated by reacting with NAD^+ This reaction is catalyzed by glutamate dehydrogenase. alpha-ketoglutarate dehydrogenase. alanine dehydrogenase. aspartate dehydrogenase. The coenzyme/prosthetic group required in the first reaction is thiamine pyrophosphate. biotin. pyridoxal phosphate. lipoic acid.
Coenzymes are organic compounds that many enzymes require for catalytic activity. They are frequently vitamins or vitamin derivatives.
The coenzyme prosthetic group required in the first reaction is thiamine pyrophosphate.
What is thiamine pyrophosphate?Thiamine pyrophosphate is a vitamin B1 derivative produced by the enzyme thiamine diphosphokinase.
Thiamine pyrophosphate is a cofactor found in all living systems that catalyzes a variety of biochemical reactions.
Thus, we can conclude that option A is correct.
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1. On the planet Susru, there are three types of bears; those who like honey-nut cheerios, those who like multi-grain, and those who like plain cheerios. The phenotype is determined in an epistatic way by two loci:
a. HNNT, with alleles H (dominant) and h (recessive), and
b. MLTGRN, with alleles M (dominant) and m (recessive)
2. In a cross of a HHMM bear and an hhmm bear, and the Fls like honey-nut. A cross of two F1 bears produces the following sums two-locus genotype counts:
a. All F2 bears with at least one H allele: 801
b. All F2 bears with at least one M allele but no H alleles: 200.
3. What number of F2 bears with the hhmm genotype would produce an F2 data set that is consistent with a dominant mode of inheritance at the 1% level of significance (Hint: Think Chi-square)?
A. 55.
B. 37.
C. 118.
D. 90
E. 15
Answer:
A. 55.
Explanation:
The three types of bears are:
1. Those who like honey-nut cheerios (let that be H)
2. Those who like multigrain (let that be M)
3. Those who like plain-cheerios (let that be P)
We were told that the phenotype is determined in an Epistatis way by two loci: i.e Epistatis Dominance Mode with:
a) HNNT : with alleles Hh
b) MLTGRN : with alleles Mm
In a cross of HHNT and MLTGRN, all F(1) like honey-nut. i.e (HhMm)
Furthemore, the process continuous with a cross of two F1 bears i.e Interbreeding of F(1) bears produced bears with:
Bears who like honey-nut cheerios, Multi-grain and Plain cheerios in F(2) in the ratio of 12:3:1. This can be explained as follows:
Dominant Epistatis for types of bears in planet Susru.
(the table can be found in the attached file below)
From the table, Let:
H= honey-nut Cheerios
M= multi-grain
P= plain
From above table, (H) is dominant to (h) and epistatic to allels (M) and (m). Hence, it will mask the expression of M/m alleles. Therefore in F(2),
• bears with H-M (9/16) and H-mm (3/16) will produce bears who like honey-nut cheerios;
• bears with hhM- (3/16) will produce bears who like multigrain and,
• those with hhmm (1/16) genotype will produce bears who like Plain.
Thus the normal dihybrid ratio 9:3:3:1 is modified to 12:3:1 ratio in F2 Generation.
Now that the Epistatis Dominance Mode of Inheritance ratio is 12:3:1
12/16= 0.75
=75%
75% = 801 (i.e Phenotype: Honey-nut and Genotype: HHMM,HhMM,HHMm,HhMm,Hhmm)
3/16= 0.1875
=18.75%
18.75% = 200 (i.e Phenotype: Multigrain and Genotype : hhMM,hhMm).
If 75% is 801, then 100% will be;
(100*801)/75=x
x= 1068
100% = 1068
This implies that, the number of F2 bears with the hhmm genotype (plain) that would produce an F2 data set will be:
(1/16) * 1068 = 67( Expected) but observed will be 55.
(The Chi-Square table can be found in the attached file below)
What is the difference between heterozygous and homozygous individuals? What is the difference between heterozygous and homozygous individuals? Heterozygotes carry two copies of a gene while homozygotes only carry one. Homozygotes have one chromosome while heterozygotes have two similar chromosomes. All of the gametes from a homozygote carry the same version of the gene while those of a heterozygote will differ. The homozygote will express the dominant trait and the heterozygote will express the recessive trait.
Answer:
All of the gametes from a homozygote carry the same version of the gene while those of a heterozygote will differ.
Explanation:
A heterozygous individual carries both dominant and recessive alleles of a gene while a homozygous individual carries two copies of either dominant or recessive alleles of a gene. For example, the genotype TT and tt have two copies of dominant and recessive alleles respectively and are therefore homozygous genotypes. On the other hand, the genotype "Tt" is a heterozygous genotype.
An individual with a homozygous genotype would produce all the gametes having the same allele of the gene. The homozygous genotype "TT" would produce all the gametes with one copy of the "T" allele. An individual with a heterozygous genotype makes two types of gametes. The genotype "Tt" would produce 50% gametes having a "T" allele and rest 50% having a "t" allele. Segregation of alleles during meiosis produces different types of gametes in a heterozygous Individual.
Heterozygous individuals have two different gene copies and express the recessive trait. Homozygous individuals have two identical gene copies and express the dominant trait.
Explanation:The difference between heterozygous and homozygous individuals lies in their gene composition and expression. Heterozygotes have two different copies of a gene, while homozygotes have two identical copies. Heterozygotes have two similar chromosomes, while homozygotes have one chromosome carrying the same version of the gene.
All the gametes from a homozygote carry the same version of the gene, while those from a heterozygote will differ. In terms of trait expression, homozygotes will express the dominant trait, while heterozygotes will express the recessive trait.
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Tasting involves many different cell-signaling processes that ultimately generate nerve signals transduced by membrane depolarization. Sweet tastes result in PIP2 hydrolysis, while salty tastes allow sodium ions to directly alter the membrane potential. What can you deduce about the signaling mechanisms for sweet and salty?
Answer:
We can deduce that:
1. Sodium ions directly enters the cells, indicating the signal is transduced by an ion channel.
2. Sweet utilizes the GRCP signaling pathway, activating phospholipase C.
Explanation:
IN SALTY, the Sodium ion passes through dynamic various chambers that can be located on the apical membrane of the taste buds.
Sweet utilizes GRCP signaling pathway va activation of phospholipase C in order to produce IP3 and DAG.
___________ arise from two eggs fertilized by two different sperm cells
Answer:
the answer is identical twins
Answer:
Identical twins
Explanation:
Suppose that you are in charge of designing a fracking job site. Which of these locations would be most ideal for the site?
Answer:
on a flat, vacant plot on the outskirts of the city
Explanation:
Took the test
If a membrane protein in an animal cell is involved in the cotransport of glucose and sodium ions into the cell, which of the following is most likely true?
A) The sodium ions are moving down their electrochemical gradient while glucose is moving up.
B) Glucose is entering the cell along its concentration gradient.
C) Sodium ions can move down their electrochemical gradient through the cotransporter whether or not glucose is present outside the cell.
D) Potassium ions move across the same gradient as sodium ions.
E) A substance that blocked sodium ions from binding to the cotransport protein would also block the transport of glucose.
Answer:
The correct answer is E) A substance that blocked sodium ions from binding to the cotransport protein would also block the transport of glucose.
Explanation:
Cotransport means that one molecule is being transported through the membrane while another molecule is transported with that energy by the same transporter. Therefore if one substance is blocking the sodium ions from binding to the protein, therefore the glucose couldn't be transported either.
Your dog has puppies. A pair of homologous chromosomes inside a puppy's cell
A. must be genetically identical
B. must have the same alleles in the same locations
C. were both inherited from the same parent
D. will fight with each other to determine which one will be dominant
E. will have the same genes at the same locations
Answer:
E. will have the same genes at the same locations
Explanation:
Homologous chromosomes are the pairs of chromosomes. The members of a homologous pair are genetically and morphologically similar to each other. One chromosome of a homologous pair is inherited from the father while the other one comes from the mother.
Genes have two or more alleles. The alleles of a gene occupy the corresponding position on the homologous chromosomes. These specific positions of alleles of a gene are called loci. Therefore, a particular locus is occupied by alleles of the same gene on two homologous chromosomes.
Answer:
The correct answer is E. will have the same genes at the same locations.
Explanation:
Homologous chromosomes are the pair chromosomes one from each parent that have similarities in length, size, gene position, and centromere position. Homologous chromosomes have the same genes at the same location on the chromosome.
One gene can be found in multiple forms called alleles but a homologous chromosome can have a maximum of two alleles of a gene and these alleles can be the same(homozygous) or different(heterozygous) and can be dominant or recessive.
So a pair of homologous chromosomes inside a puppy's cell will have the same gene at the same location but can have different alleles of that gene.
The westward migration of Assateague Island might be halted or even reversed if all of the groins, jetties, and seawalls around Ocean City were removed. How might removal of all of these structures affect the risk of environmental damage to properties in Ocean City?
In 1933 after the hurricane ocean city inlet are formed. In order to make the inlet steady and to prevent sand flow in north direction but the natural dune is hindered. When these structures are removed, it causes drastic soil erosion and submergence of the land.
Explanation:Along the coasts of Maryland and Virginia, Assateague Island stretches for 37 miles. The islands in these part are barrier consisting of ocean currents and storms which reforms the land form. Sea level changing and movement of offshore sediments are affected.
The sand from dunes and upper beaches are removed in severe winter which reduces the width of beach. But in case of summer gentler wave action restores the shoreline.The erosion of sand takes place due to severe storms which is carried away by flood waters and re-deposited in marshes moving along westward and bring closer to mainland.
Answer:
This island is characterized for being an island that acts as a natural barrier and the erosion on it is constant, it is also extensively modified due to the fluctuation of the sea. In this way, the structures are built to prevent constant erosion and modifications caused by the sea. If these structures are considered to be removed, fluctuation by the sea will further erode this barrier island and water will enter, causing a flood to the oceanic island.
Explanation:
A mutation occurs in an operon that prevents the transcription factor from binding to its recognition site on the DNA. In which type(s) of gene regulation would this mutation result in constitutive expression of the structural gene?
Answer:Negative inducible and Negative Repressible
Explanation:
Negative control of operon includes Negative inducible and Negative repressible both prevent transcription, but are different in there mode of operation.
Negative inducible operon: This is usually a process by which an active repressor regulatory protein binds to the DNA thereby inhibiting RNA polymerase from transcribing gene.
Negative repressible operons: This is also a process when an negative inducer binds to the operator to which prevent DNA transcription
Answer:
Explanation:
In the negative inducible and negative repressible regulations of gene.
Should any of Marjorie's family members whom she comes into contact with be considered at risk of pertussis? If so, who?A) Yes, the five-year-old cousin should be considered at risk.B) Yes, the aunt should be considered at risk.C) Yes, the six-week-old cousin should be considered at risk.D) No, no one should be considered at risk.
Answer:
C) Yes, the six-week-old cousin should be considered at risk.
Explanation:
young are at higher risk of pertussis as compared to older children and adult because young infants are not fully immunized. At the young age of 6 week, the cousin may not have started the DPT vaccination. so babies at this age gets easily affected when they are in contact with the infected people.
Indicate whether or not the following antibody combinations could be used to successfully perform your assay. If a pair can’t be used successfully, indicate why not. (6pts)
• Rabbit anti-HA polyclonal antibody as antibody (II) and Goat anti-rabbit polyclonal antibody conjugated to HRP as antibody (III) Circle one: yes no
• Mouse anti-HA monoclonal antibody as antibody (II) and Goat anti-rabbit polyclonal antibody conjugated to HRP as antibody (III) Circle one: yes no
• Mouse anti-HA monoclonal antibody as antibody (II) and Goat anti-mouse polyclonal antibody conjugated to HRP as antibody (III) Circle one: yes no
Answer:
YesNo;YesExplanation:
Yes: The assay would be successful since antibody (III) is raised against rabbit therefore it would recognize and bind to the epitopes on antibody (II) because it is also a rabbit antibody. No: The assay would unsuccessful since antibody (III) is raised against rabbit and would not bind to the epitopes on antibody (II) which is mouse anti-HA.Yes: The assay would be successful and the signal would be amplified since the polyclonal mouse antibody (III) would bind all the epitopes of the monoclonal mouse antibody (II).A 47-year old man presents with severe pain in his right great toe. He is unable to bear weight on his right foot and there was no apparent trauma. He reports the pain started last night and continued to increase in severity. Based on his physical exam and laboratory findings he is diagnosed with gout. Gout can be caused by several different mechanisms and blood samples are drawn and urinalysis is performed. The results from this individual are listed below.Patient Plasma Urate(mg/100ml) Urinary Uric Acid(mg/24hr)Normal <7.0 413±78Patient 10.5 215 What is the best explanation for the presentation of gout in this individual and please explain why the other choices are not consistent with the data or what additional information you may need to decide the root cause?1. overproduction of purines2. decreased salvage of purines3. decreased urinary excretion of uric acidAfter further discussion with the patient, he tells you that he recently switched from diet soda to regular soda because he read that the ‘fake sugar’ diet soda was bad for him; he tells you he drinks between 4 and 5 L of soda a day. (NOTE: The primary sugar in most sodas is fructose or high fructose corn syrup.)What is the potential impact of this dietary modification on the presentation of gout?
Answer:
the best explanation is 1. overproduction of purines
Explanation:
Purines are nitrogenous base that are broken down to uric acid which is excreted through the kidney as a constituent of urine. Different conditions that lead to an impaired removal of plasma uric acid cause gout. Soda drinks and many soft drinks contain low levels of purines and high level of fructose. Fructose is the only carbohydrate known to increase uric acid levels by increase the rate of degradration and synthesis of purine