1. Which protein and nucleic acid molecules are present in the PDB structure with code IKX3? 1. Histones 2A and 2B and DNA only. DNA only. Histones 3 and 4 and DNA only. Histones 2A, 2B, 3, 4 and DNÁ. DNA ligase. 2. 3. 4. 5.

Human Anatomy & Physiology (11th Edition)
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Chapter1: The Human Body: An Orientation
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Problem 1RQ: The correct sequence of levels forming the structural hierarchy is A. (a) organ, organ system,...
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1.
Which protein and nucleic acid molecules are present in the PDB structure with code
IKX3?
Histones 2A and 2B and DNA only.
DNA only.
Histones 3 and 4 and DNA only.
Histones 2A, 2B, 3, 4 and DNA.
DNA ligase.
1.
2.
3.
4.
5.
Which amino acids would you expect to find buried in the interior of peripheral
membrane protein?
1.
leucine, methionine
2.
threonine, glutamate
tyrosine cysteine
3.
4.
5.
lysine, arginine
histidine, glutamic acid
A basic leucine zipper
1.
3
is the name of a full transcription factor protein.
interacts with RNA polymerase.
is a portion of a full transcription factor protein.
is used to join any type of protein domains.
cause aggregation of transcription factors.
4
DNA methylation acts to inhibit gene expression by
1.
altering the DNA structure and interfering with proteins that bind.
changing binding of histones to DNA.
3.
activating the binding of bromodomain containing proteins.
4.
2.
forming acetyl groups.
changing the TATA box sequence.
5.
A-2345
2.
Transcribed Image Text:1. Which protein and nucleic acid molecules are present in the PDB structure with code IKX3? Histones 2A and 2B and DNA only. DNA only. Histones 3 and 4 and DNA only. Histones 2A, 2B, 3, 4 and DNA. DNA ligase. 1. 2. 3. 4. 5. Which amino acids would you expect to find buried in the interior of peripheral membrane protein? 1. leucine, methionine 2. threonine, glutamate tyrosine cysteine 3. 4. 5. lysine, arginine histidine, glutamic acid A basic leucine zipper 1. 3 is the name of a full transcription factor protein. interacts with RNA polymerase. is a portion of a full transcription factor protein. is used to join any type of protein domains. cause aggregation of transcription factors. 4 DNA methylation acts to inhibit gene expression by 1. altering the DNA structure and interfering with proteins that bind. changing binding of histones to DNA. 3. activating the binding of bromodomain containing proteins. 4. 2. forming acetyl groups. changing the TATA box sequence. 5. A-2345 2.
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