How many kinds of mosquito are common in Nepal l

Answers

Answer 1

Answer:

there are 130 kinds of mosquito are common in Nepal l

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Which gas giants have a ring system? Select all that apply. A. Saturn B. Jupiter C. Uranus D. Neptune

Answers

A. Saturn and B. Jupiter I hope this helps

What trait distinguishes between the kingdoms of bacteria and archaea?

Answers

Answer:

Their Cell walls

Explanation:

Bacteria has a cell made up of peptidoglycan
Archaebacteria has a cell wall made of various compounds)
Their rRNA is different, so different taht tehy are placed on different part of the evolutionary tree.

Answer:

Explanation:

Transposons need to __________________ in order to limit their negative impact on the genome of the host cell. A. control their nucleotide length B. regulate their copy number C. control their target-site choice D. avoid transposing into their own genome

Answers

Answer:

The correct answer is B

Explanation:

Transposons need to regulate their copy number to avoid errors with chromosomal pairing during meiosis and mitosis such as unequal crossover.

A typical example of this error is called the Alu Sequence or Elements. Alu elements contain more than one million copies found everywhere in the genome of human beings.

Many inherited human diseases such as cancer are related to Alu insertions.

Cheers!

Final answer:

To minimize their negative impact on a host cell's genome, transposons need to regulate their copy number. Unregulated replication could lead to harmful mutations.

Explanation:

Transposons, also known as jumping genes, are sequences of DNA that can move around to different positions within the genome of a single cell. Their movement can cause mutations, which can have negative impacts on the host cell. In order to limit their negative impact on the host cell's genome, transposons need to B. regulate their copy number. If they did not manage this, over-replication of transposons could overload the cell with unnecessary genetic material, leading to harmful mutations or even cancer.

Learn more about Transposons here:

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Tail length in mammals is a heritable trait. A pig with a 6 cm tail was mated to a pig with a 30 cm tail. All F1 offspring had a tail of length 18 cm. An F2 generation was made by crossing F1 individuals. This resulted in many piglets whose tails ranged in 4-cm intervals from 6 to 30 cm (6, 10, 14, 18, 22, 26, 30). The majority of pigs had 18 cm tails, 1/64 had 6 cm tails, and 1/64 had 30 cm tails.These results are consistent with what genetic model?

(a) Two genes, each with two alleles that show dominance
(b) Two genes, each with two alleles that act additively
(c) Three genes, each with two alleles that show dominance
(d) Three genes, each with two alleles that act additively

An F2 piglet with an 18 cm tail is heterozygous at each of the tail-length loci, and is mated to an F2 piglet with a 6 cm tail. Write down the predicted offspring genotypes and calculate the predicted tail lengths. What is the expected frequency of piglets with a 14 cm tail length?

Answers

Answer:

The answer is (d) Three genes, each with two alleles that act additively.

Explanation:

1/ The genotype of P is AABBCC and aabbcc, for example. Then, F1 should be AaBbCc.

The genotype of individuals with n heterozygous pair is 2^n. Thus, in this case, the number of genotype in F2 should be 2^3 * 2^3 = 8 * 8 = 64. We can get this conclusion by analyzing the number of 6 cm tails in F2: 1/64 with genotype aabbcc, and the number of 30 cm tails: 1/64 with genotype AABBCC. These two genotypes is as same as the ancestor in this experiment.

The genotype of an F2 piglet with an 18 cm tail is AaBbCc. If these genes show dominance, the tail lenght of F2 will be 30 cm. And there are 7 possible phenotypes. Thus, we can conclude that the genes act additively.

2/ 18 cm tail F2: AaBbCc, and 6 cm tail: aabbcc.

The offspring genotypes are:

18 cm AaBbCc, 14 cm AaBbcc, 14 cm AabbCc, 10 cm Aabbcc
14 cm aaBbCc, 10 cm aaBbcc, 10 cm aabbCc, 6 cm aabbcc

The frequency of piglets with 14 cm tail length should be 3/8 = 37.5%.

Answer and Explanation:

1) These results are consistent with option (d)Three genes, each with two alleles that act additively .

Quantitative heritability: Refers to the transmission of a phenotypic trait in which expression depends on the additive effect of a series of genes.

Polygenic heritability occurs when a trait is due to the action of more than one gene that can also have more than two alleles. This can cause many different combinations that are the reason for genotypic graduation.

Quantitative traits are those that can be measure, such as longitude, weight, eggs laid per female, among others. These characters do not group individuals by precise and clear categories. Instead, they group individuals in many different categories that depend on how the genes were intercrossed and distributed during meiosis. The result depends on how each allele of each gene contributed to the final phenotype and genotype.

In the exposed example, there are 7 different phenotypes (6, 10, 14, 18, 22, 26, 30) and the majority of F2 individuals have 18-lengthed tails. This might be the heterozygotic phenotype for all the genes.The rest of the phenotypes are possible combinations of genes and their alleles. There are six possible combinations (apart from the 18 lenght form). This leads to 3 genes and two alleles in each gene.

So, until now we have:

A pig with a 6 cm tail was mated to a pig with a 30 cm tail. All F1 offspring had a tail of length 18 cm. This is:

Parental) 6cm x 30cm

F1) 18 cm

An F2 generation was made by crossing F1 individuals. This resulted in many piglets whose tails ranged in 4-cm intervals from 6 to 30 cm (6, 10, 14, 18, 22, 26, 30). This is:

Parental) 18 cm x 18 cm

F2) 6, 10, 14, 18, 22, 26, 30

The majority of pigs had 18 cm tails, this means that 18 cm phenotype is a heterozygote for each gene

1/64 had 6 cm tails, and 1/64 had 30 cm tails, this means that these two phenotypes are the extreme traits, that is the recessive homozygote and the dominant homozygote.

There are 7 phenotypes, one of them is the recessive form, the other is the dominant form and the majority is the heterozygotic form for every intervening gene. There are three genes with two alleles each:

Gene 1: allele A and a

Gene 2: allele B and b

Gene 3: Allele C and c

Phenotypes:

aabbcc: homozygotic recessive form

AABBCC: homozygotic dominant form

AaBbCc: heterozygotic form for every intervening gene

If the recessive form is 6cm length, and each dominant allele contributes in 4 cm to each phenotype, we get:

6 cm length = aabbcc (1/64)

10cm length = Aabbcc (A contributes 4cm)

14cm length = AaBbcc (A and B contribute 4 cm each)

18cm length = AaBbCc (The majority) (A, B and C contribute 4cm each)

22cm length = AABbCc

26cm length = AABBCc

30cm length = AABBCC (1/64)

2) An F2 piglet with an 18 cm tail is heterozygous at each of the tail-length loci, and is mated to an F2 piglet with a 6 cm tail.

Parental) AaBbCc x aabbcc

Gametes) ABC ABc AbC Abc aBC aBc abC abc

abc abc abc abc abc abc abc abc

Punnet square)

ABC ABc AbC Abc aBC aBc abC abc

abc AaBbCc AaBbcc AabbCc Aabbcc aaBbCc aaBbcc aabbCc aabbcc

F3 genotype and phenotype)

8/64 AaBbCc = 18 cm

8/64 AaBbcc = 14cm

8/64 AabbCc = 14cm

8/64 Aabbcc = 10cm

8/64 aaBbCc = 14cm

8/64 aaBbcc = 10cm

8/64 aabbCc = 10cm

8/64 aabbcc = 6cm

Each dominant allele contributes 4cm to the recessive homozygote form for each phenotype.

These structures protect and enclose gene expression products as they move from the site of protein synthesis to its final secretion from the cell. ___________

Answers

Answer:

The correct answer will be- Cargo vesicles

Explanation:

The product of the gene expression is known as the protein which is formed as the result of the transcription and translation.

The process of translation takes place in the ribosomes attached to the endoplasmic reticulum after which the proteins enter the lumen of the endoplasmic reticulum.

The protein then enters the secretory pathway which represents the movement of proteins by packaging them in cargo vesicles attached with the cargo proteins.

Thus, Cargo vesicles are the correct answer.

a 50 kg box is pusher across the floor.if the acceleration of the box is 2.5m/s², what is the net force ecerted on the box