Written by students who passed Immediately available after payment Read online or as PDF Wrong document? Swap it for free 4.6 TrustPilot
logo-home
Summary

Summary Gene Regulation DT1 - Week 3-4: Lectures on Genetic Switches, Lambda Phage Circuits & Regulatory Network Motifs

Rating
-
Sold
-
Pages
15
Uploaded on
19-07-2026
Written in
2024/2025

Compact, exam‑focused summary of the Week 3-4 lectures, tests and tutorials, covering all core concepts. Ideal for quick revision of lambda‑phage lysis/lysogeny control, operator logic, cooperativity, long‑range interactions, RecA‑mediated switching, synthetic gene circuits, autoregulation, feed‑forward loops and fundamental gene regulatory network motifs.

Show more Read less
Institution
Course

Content preview

Lecture 6: Eukaryotic transcription – Part 1

Importance of eukaryotic transcription:

• Fundamental process in biology: first step in the central dogma
• Miss-regulation leads to problems, e.g. disease
• Manipulating gene expression used in biotechnology, crop improvement, therapy
• Transcription is a multi-step process that is very tightly regulated: it is complex

The transcription cycle:

Transcription = DNA-templated RNA synthesis, carried out by RNA Polymerases. Three
stages that all RNA polymerases go through: initiation → elongation → termination.

• Initiation: RNAPII binds to the promoter with the help of transcription factors, unwinds DNA, and begins RNA synthesis.

• Elongation: RNAPII moves along the DNA, adding nucleotides to the growing RNA strand while interacting with elongation factors.

• Termination: Transcription ends, RNA is released, and RNAPII disengages from DNA. Termination can occur via different mechanisms
depending on the organism.

How polymerases go through these stages varies. Each matrix-covered DNA segment is a gene coding for rRNA
precursor molecules.

Question: On which side does initiation happen? S or M?

Answer: Initiation begins on the S-side because at the initiation side there will be less RNA-synthesis.


RNA Polymerase:

Bacteria: one RNA Polymerase; eukaryotes: several
polymerases. ~9 bp RNA-DNA hybrid is a major contributor to
the stability of elongating RNA polymerase.

Functions of RNA Polymerase:

• Recognize template DNA bases
• Faithfully add complementary RNA base
• Separate RNA-DNA hybrid
• Separate DNA strands
• Re-anneal DNA strands

RNA polymerization happens 5’ to 3’, antiparallel to the template strand. Polymerase adds to RNA 3’end.

Question: If the 8 nucleotide of DNA template inside the RNAPII active site is 5’- TCCTCTCG -3’. What is the sequence of the RNA 5’ to 3’?

Answer: Use the non-template strand to think of RNA sequence: 5’-CGAGAGGA-3’.


Different types of RNA-polymerases:

• RNA-polymerase I (first peak):
o Alpha-amanitin resistant
o In the nucleolus, where ribosomal RNA is made
o RNA-Pol I transcribes rRNA

• RNA-polymerase II (second peak):
o Alpha-amanitin sensitive → alpha-amanitin causes major RNA loss
o In the nucleoplasm
o RNA-Pol II transcribes mRNA, miRNAs, snRNAs, other non-coding RNAs

• RNA-polymerase III (third peak):
o Alpha-amanitin resistant
o In the nucleoplasm
o RNA-Pol III transcribes tRNAs, 5S rRNA, some other non-coding RNAs




1|Page

, Different types of RNA-polymerases:

• Other RNA-polymerases (land plants and some algae):
o RNA-Pol IV transcribes siRNA precursors
o RNA-Pol V transcribes long non-coding RNAs (lncRNAs)
o siRNAs base pairing to lncRNAs cause silencing

• Transcription outside the nucleus:
o Chloroplasts encode and use bacteria-like RNA-Pol
o Mitochondrial DNA is transcribed by nuclear-encoded bacteriophage-like RNA-Pol

Different parts in a transcribing RNA-Pol II structure:

A transcribing RNAPII structure looks like a crab claw and consists of:

• DNA entry and exit channels – where the template DNA enters and exits
• RNA exit channel – where the growing RNA strand emerges
• Active site – where catalysis occurs
• Clamp domain – holds the DNA-RNA hybrid stable
• Carboxyl-terminal domain (CTD) – involved in regulation and RNA processing

RNAPII C-terminal domain:

The C-terminal domain (CTD) of RNAPII consists of repeats of the heptapeptide YSPTSPS. CTD phosphorylation is dynamic
and coordinates transcription with RNA processing.

Phosphorylation of specific residues regulates transcription:

• Ser5 phosphorylation → Promotes initiation and recruitment of capping enzymes (highly expressed in TSS).
• Ser2 phosphorylation → Signals elongation and splicing factor recruitment (highly expressed in PolyA-site).
• Ser7 phosphorylation → Plays a role in snRNA transcription.

CTD is a major interaction surface:

• RNA capping relies on Ser5 phosphorylation
• Ser2ph bound by H3K36 methyltransferase
• Termination relies on Ser2 phosphorylation

Highlights:

• RNA gets made 5’ to 3’, antiparallel from the template strand
• Bacteria have one RNAP, while eukaryotes have 3-5 nuclear RNA polymerases.
o Each polymerase produces specific transcript classes

• All RNA polymerases have a “crab claw” shape core
• Eukaryotic RNA polymerases also have specific subunits
• Repetitive C-terminal domain is not seen in structure, but very important as an interaction surface

Key steps inside RNAPII:

• One DNA base pair melts, the flipped-out DNA base from the template strand is stabilized by bridge helix
• Random rNTPs enter active site. If rNTP is complementary to the flipped-out DNA base, it can stay
• Trigger loop closes in to better position rNTP, reaction occurs

• Translocation happens: RNAPII moves up by one nucleotide
o One more nucleotide of the RNA sticks out of the RNA exit channel
o Base pair reforms between template and non-template DNA strands

rNTP- misincorporation:

• RNAPII error rate is ~5 ∙ 10-6 / bp → 1 mutation per 200k nt
• Average protein-coding gene is 54kb, ~200k mRNAs per cell → ~0.25 mistakes per pre-mRNA, ~50k wrong RNA bases in every cell

• DNA replication errors: ~10-9 bp
• Initial synthesis fidelity: ~10-4 bp




2|Page

Written for

Institution
Study
Course

Document information

Uploaded on
July 19, 2026
Number of pages
15
Written in
2024/2025
Type
SUMMARY

Subjects

$7.01
Get access to the full document:

Wrong document? Swap it for free Within 14 days of purchase and before downloading, you can choose a different document. You can simply spend the amount again.
Written by students who passed
Immediately available after payment
Read online or as PDF

Get to know the seller
Seller avatar
SnomStudyNotes

Also available in package deal

Get to know the seller

Seller avatar
SnomStudyNotes Universiteit Utrecht
Follow You need to be logged in order to follow users or courses
Sold
5
Member since
8 months
Number of followers
0
Documents
52
Last sold
2 weeks ago
SnomStudyNotes

High-quality, structured study notes for the Bachelor Biology programme at Utrecht University. Focused on clear, exam-oriented summaries of first-year, second-year, and third-year courses, with a specialisation in cellular biology, developmental biology, and neuroscience. These notes are designed to simplify complex biological concepts into well-structured, high-yield summaries to support efficient and effective exam preparation.

0.0

0 reviews

5
0
4
0
3
0
2
0
1
0

Why students choose Stuvia

Created by fellow students, verified by reviews

Quality you can trust: written by students who passed their tests and reviewed by others who've used these notes.

Didn't get what you expected? Choose another document

No worries! You can instantly pick a different document that better fits what you're looking for.

Pay as you like, start learning right away

No subscription, no commitments. Pay the way you're used to via credit card and download your PDF document instantly.

Student with book image

“Bought, downloaded, and aced it. It really can be that simple.”

Alisha Student

Working on your references?

Create accurate citations in APA, MLA and Harvard with our free citation generator.

Working on your references?

Frequently asked questions