Chromosomal Inheritance & Cell Division – Mastering Genetics. – Flashcards
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Which of the following statements best describes bacterial genome organization?
All bacterial genomes consist of a single, circular chromosome.
All bacterial genomes consist of one or a small number of linear chromosomes.
All bacterial genomes consist of multiple, circular chromosomes.
Bacterial genomes may consist of a single, circular chromosome or multiple chromosomes that may be linear or circular.
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Bacterial genomes may consist of a single, circular chromosome or multiple chromosomes that may be linear or circular.
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Where are bacterial chromosomes located within the cell?
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nucleoid
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What is meant by the "beads on a string" model of chromatin?
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The beads are the nucleosomes, and the string is the linker DNA
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Rank the following levels of chromatin compaction in eukaryotes from the least compact to the most compact.
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(least compact) naked DNA -> nucleosome -> selenoid -> loop domains -> chromatid -> metaphase chromosome (most compact)
Chromatin compaction is required for the nucleus to accommodate genomes that are often more than 1,000 times longer than the nuclear diameter. As the 2nm wide DNA is organized into chromatin, each level of compaction has a chromatin structure with a signature diameter (2nm DNA, 11nm nucleosome, 30nm solenoid, 300nm loop domains, 700nm chromatid, and 1400nm metaphase chromosome).
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Which histone helps stabilize the solenoid structure?
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H1
The histone protein H1 plays a key role in stabilizing the 30-nm solenoid structure. The long N-terminal and C-terminal ends of the H1 protein attach to adjacent nucleosome core particles pulling them into an orderly solenoid array.
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Histone acetyltransferases (HATs) are capable of remodeling chromatin by adding acetyl groups to various lysine residues in histones that comprise the nucleosome. Following this modification, the lysine residue no longer has a positive charge. Which statement is true?
Histones in general have a net positive charge that allow them to bind to DNA. Acetylation of histones, decreases their positive charge and weakens the histone-DNA interaction.
Histones in general have a net negative charge that allow them to bind to DNA. Acetylation of histones, decreases their positive charge and strengthens the histone-DNA interaction
Histones in general have a net negative charge that allow them to bind to DNA. Acetylation of histones, decreases their positive charge and weakens the histone-DNA interaction.
Histones in general have a net positive charge that allow them to bind to DNA. Acetylation of histones, decreases their positive charge and strengthens the histone-DNA interaction.
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Histones in general have a net positive charge that allow them to bind to DNA. Acetylation of histones, decreases their positive charge and weakens the histone-DNA interaction.
Histones are basic proteins that interact with negatively charged DNA. The strength of this interaction is modulated by epigenetic modifications. One of these modifications is acetylation. Acetylation adds an acetyl group to the positively charged amino group present on the side chain of the amino acid lysine effectively changing the net charge of the protein by neutralizing the positive charge. When the positive charge is reduced, the histones loosen their grip on the negatively charged DNA.
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A cell can form 10-nm chromatin fibers, but not 30-nm fibers. Which molecule has likely been removed or mutated in this cell?
H3
H1
topoisomerase
H2A
SMC proteins
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H1
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How many pairs of chromosomes are found in a typical human somatic cell's karyotype?
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23
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Which type of chromosome has no p arms?
metacentric
acrocentric
subacrocentric
submetacentric
telocentric
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telocentric
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Which type of DNA produces a light band when treated with Giemsa stain?
euchromatin
centromere DNA
DNA that is not actively transcribed
heterochromatin
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euchromatin
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What term best describes the shape of this chromosome?
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acrocentric
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Do you expect the centromeric region to contain facultative heterochromatin?
yes
no
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no
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Where is it more likely to find the DNA sequence encoding the digestive enzyme amylase?
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euchromatic region
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Which of the following is not part of interphase in the cell cycle?
G2
G1
M
S
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M
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The S phase of the cell cycle results in the production of two identical copies of each chromosome, known as _______.
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sister chromatids
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During meiosis I, when does homologous chromosome pairing and recombination occur?
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prophase I
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A couple has a daughter with Turner syndrome, a condition in which only a single copy of the X chromosome is present. This results from nondisjunction, the failure of the X chromosome to segregate properly during meiosis.
During which meiotic division, and in which parent, could nondisjunction have occurred to produce a child with this condition?
Select all that apply.
Meiosis I in the mother
Meiosis II in the mother
Meiosis I in the father
Meiosis II in the father
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Meiosis I in the mother
Meiosis II in the mother
Meiosis I in the father
Meiosis II in the father
During meiosis I, homologous chromosomes separate. If nondisjunction occurs, both homologous chromosomes migrate into the same daughter cell instead of different daughter cells. If this happens in the mother, both X chromosomes end up in one cell, with no X chromosome in the other cell. If this happens in the father, both the X and Y chromosome end up in one cell, with no sex chromosome in the other cell. In both cases it is possible for one parent to not give a sex chromosome to the child. If the other parent gives an X chromosome, the child will be XO and have Turner syndrome.
During meiosis II, sister chromatids separate. If nondisjunction occurs, both sister chromatids migrate into same daughter cell, instead of different daughter cells. If this happens in the mother, two identical copies of an X chromosome end up in one cell, with no X chromosome in the other cell. If this happens in the father, either two identical copies of the X chromosome end up in one cell, with no sex chromosome in the other cell - or - two identical copies of the Y chromosome end up in one cell, with no sex chromosome in the other cell. In all cases, it is possible for one parent to not give a sex chromosome to the child. If the other parent gives an X chromosome, the child will be XO and have Turner syndrome.
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A couple has a son with XYY syndrome, a condition in which an extra copy of the Y chromosome is present. This condition also results from nondisjunction.
During which meiotic division, and in which parent, could nondisjunction have occurred to produce a child with this condition?
Select all that apply.
Meiosis I in the mother
Meiosis II in the mother
Meiosis I in the father
Meiosis II in the father
answer
Meiosis II in the father
The key to solving this problem is to realize that the child got two Y chromosomes. Both of those Y chromosomes had to have come from the father, as the mother has no Y chromosomes. In order to get two Y chromosomes, nondisjunction would have to have occurred in meiosis II - identical Y sister chromatids migrated together into one cell.
During meiosis II, sister chromatids should separate. If nondisjunction occurs, both sister chromatids migrate into same daughter cell, instead of different daughter cells. If this happens in the father, either two identical copies of the X chromosome end up in one cell, with no sex chromosome in the other cell - or as in this case two identical copies of the Y chromosome end up in one cell, with no sex chromosome in the other cell. If the sperm containing two copies of the Y chromosome fertilizes an egg containing an X chromosome, the child will be XYY.
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A couple has a son with Klinefelter syndrome, a condition in which an extra copy of the X chromosome is present. This condition also results from nondisjunction.
During which meiotic division, and in which parent, could nondisjunction have occurred to produce a child with this condition?
Select all that apply.
Meiosis I in the mother
Meiosis II in the mother
Meiosis I in the father
Meiosis II in the father
answer
Meiosis I in the mother
Meiosis II in the mother
Meiosis I in the father
To produce a child with XXY, either mom gave two X chromosomes and dad gave Y OR mom gave one X chromosome and dad gave both X and Y.
There are two ways mom could give two X chromosomes - either she gave both of her X's (meiosis I nondisjunction), or she gave two copies of one of her X's (meiosis II nondisjunction). In both these cases if dad gives a Y chromosome, the child is XXY and has Klinefelter's.
There is only one way dad could give X and Y, and that's if X and Y did not separate in meiosis I. Then if mom gives an X chromosome, the child is XXY and has Klinefelter's. Nondisjunction in meiosis II in dad would give both sister chromatids - either XX or YY, which would produce either a XXX girl or a XYY boy... not a XXY boy.
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Which histone helps stabilize the solenoid structure?
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H1
