Bacterial Chromosomes
Supercoiling
Chromatin & Nucleosomes
Chromatin Remodeling
Centromeres & Telomeres
100

This region of a bacterial cell contains its highly compacted chromosome.

Nucleoid

100

Most cellular DNA has this type of supercoiling.

Negative supercoiling

100

These structures make up the “beads” in the beads-on-a-string model.

Nucleosomes

100

This type of chromatin is less condensed and is frequently transcribed.

Euchromatin

100

This chromosome region attaches to the kinetochore.

Centromere

200

Unlike most eukaryotic chromosomes, the E. coli chromosome has this overall shape.

Double-stranded closed circle/circular

200

Negative supercoiling makes these two DNA processes easier by promoting strand separation.

Replication and transcription

200

Name the four histones that make up the nucleosome core.

H2A, H2B, H3, H4

200

These enzymes add acetyl groups to lysines on histone tails.

Histone acetyltransferases

200

These structures act as protective caps at the natural ends of chromosomes.

Telomeres

300

Bacterial DNA is compacted by being highly folded into a series of these structures.

Twisted loops

300

A DNA molecule has 300 bp and 20 complete rotations; classify it as relaxed, positively supercoiled, or negatively supercoiled.

Positively supercoiled because relaxed DNA has ~10 bp/turn, so 300 bp would normally have ~30 turns; 20 means it is underrotated.

300

If a cell contains 50 nucleosomes, how many copies of H2B are present?

100 H2B molecules because each nucleosome contains two H2B proteins.

300

Histone acetylation generally causes chromatin to become more accessible or less accessible to transcription?

More accessible to transcription

300

What happens during mitosis to a chromosome fragment that lacks a centromere?

It is lost during mitosis.

400

Give two major structural differences between a typical bacterial chromosome and a human chromosome.

 Bacterial chromosomes are typically circular and relatively simple/compact, whereas human chromosomes are multiple, linear, and extensively associated with histones/proteins.

400

Besides facilitating strand separation, what is the other major advantage of negative supercoiling described in the chapter?

It allows DNA to be packed into a smaller space.

400

Approximately how many base pairs of DNA are wrapped around each histone octamer, and what histone acts as a clamp at the linker DNA?

145–147 bp; H1

400

Predict what would happen to transcription if histone deacetylase activity increased.

145–147 bp; H1

400

Why do telomeres become progressively shorter in most somatic cells?

Because most somatic cells do not sufficiently maintain their chromosome ends with telomerase, so telomeres shorten with successive cell divisions.

500

A mutation prevents bacterial DNA from forming its normal folded and twisted-loop organization; predict the major problem the cell would face regarding its chromosome.

The chromosome would have difficulty compacting into the small bacterial cell/nucleoid.


500

Two identical DNA molecules differ only in supercoiling: one is relaxed and one negatively supercoiled; which should require less energy to initiate strand separation, and why?

Negatively supercoiled DNA, because underwinding facilitates separation of the two DNA strands.

500

Put these structures in order from least to most condensed: metaphase chromosome, nucleosome, 30-nm fiber, DNA double helix, looped chromatin.

DNA double helix → nucleosome → 30-nm fiber → looped chromatin → metaphase chromosome

500

A gene becomes highly sensitive to DNase I after chromatin remodeling; what does this suggest about its chromatin structure and transcriptional activity?

DNA double helix → nucleosome → 30-nm fiber → looped chromatin → metaphase chromosome

500

A mutation eliminates telomerase in a rapidly dividing germ-cell lineage; predict what will happen to its telomeres over successive divisions and why.

The telomeres would progressively shorten with successive divisions because telomerase normally lengthens telomeres and prevents chromosome shortening in germ cells.