Three-dimensional animation of the complete bacterial transcription cycle. Press D for a text description of every step, or question mark for keyboard shortcuts.

IIMOLECULAR BIOLOGY
OF GENES

Transcript0 nt
5′3′

RNA is extended at the end inside RNAP.

01RNA polymerase

Assembling the core enzyme.

Termination

Drag to orbit · scroll to zoom · double-click or Esc to resume

Termination

Follow either ending.

The same transcription cycle can end through different molecular mechanisms.

Termination

What was different?

Rho-dependentIntrinsic
Protein needed?Yes: the Rho factorNo (NusA can assist)
Signal in the RNAA rut site upstream of the termination pointA GC-rich inverted repeat (hairpin) followed by a U-rich tract
EnergyATP, used by Rho’s C-terminal ATPaseNone beyond RNA folding
Helper factorNusG can bridge Rho and RNAPNusA stabilises the hairpin pause
Role of pausingA pause gives Rho time to catch upThe hairpin and U tract pause and destabilise RNAP
OutcomeThe RNA is released, the DNA rewinds, and the core enzyme can bind σ again
How commonAbout half of E. coli terminators are intrinsic (≈1,100 sequences fit the pattern)

Keyboard

Shortcuts

In the 3D view (Tab to it): arrow keys pan, Shift and arrows rotate, + and − zoom. Esc returns to the guided camera.

The complete transcription cycle

Preparing molecular structures

Scientific basis

Structures support
the moving explanation.

RNAP, Rho and NusG use 8E6X and 8E6W. Sigma-70 uses 4YLN, which also supplies the upstream promoter DNA path during initiation (−35 on σ region 4, −10 on σ region 2); NusA uses 6FLQ. Both are aligned through the core enzyme. The α C-terminal domains, which can contact promoter DNA, are not resolved in 8E6X or 4YLN and are not shown (6FLQ resolves them, but only its NusA is used here).

Promoter elements follow 4YLN; the rest of the sequence is an illustrative teaching sequence, with the Rho utilisation site taken from the 8E6W rut RNA. The trigger-loop tip is unresolved in 8E6X, so its folding is schematic. Error-induced backtracking and dinucleotide cleavage follow Zenkin, Yuzenkova & Severinov (2006); in cells GreA and GreB stimulate the cut.

The teaching transcript begins with a short gene (ribosome-binding site AGGAGG, AUG … UAA). With Coupled translation turned on (More, or T), a schematic ribosome (two lobes, not a structure) translates it during the elongation time-lapse while RNAP transcribes, linked by NusG’s KOW domain as in NusG-coupled expressome structures; the rut site lies after the stop codon, in RNA no ribosome covers.

Protein surfaces are smoothed envelopes of deposited coordinates. Protein movement, DNA opening, RNA extension and release are illustrative trajectories, not a molecular-dynamics simulation. The long transcript is a teaching sequence; animation time is slowed and is not elapsed cellular time.

The Rho route represents catch-up along RNA. Exterior RNA contacts and unresolved segments are simplified during the wide view. The intrinsic route shows an RNA hairpin followed by a U-rich tract. Sigma release and RNAP dissociation are shown as common possibilities, not obligatory outcomes in every complex.

Molodtsov et al. · Rho termination · 2023
Zuo & Steitz · Initiation · 2015
You et al. · Intrinsic termination · 2023
Guo et al. · NusA-stabilised pausing · 2018
Zenkin et al. · Transcriptional proofreading · 2006

RNA lengths are displayed in nucleotides. The chip under the header shows how much slower than a cell each stretch plays; cells add about 40–50 nucleotides per second.