Flavopiridol inactivates P-TEFb and blocks most RNA polymerase II transcription in vivo

S H Chao1, D H Price

  • 1Molecular Biology Program, University of Iowa, Iowa City, Iowa 52242, USA.

Insights

Flavopiridol, a potent inhibitor of positive transcription elongation factor b (P-TEFb), blocks HIV replication. Its tight binding to P-TEFb allows for novel drug screening assays.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Virology

Background:

  • Flavopiridol is a cyclin-dependent kinase (Cdk) inhibitor investigated for cancer therapy.
  • It also inhibits human immunodeficiency virus (HIV) Tat transactivation and viral replication by targeting positive transcription elongation factor b (P-TEFb).
  • Flavopiridol is a potent, non-ATP-competitive P-TEFb inhibitor.

Purpose of the Study:

  • To investigate flavopiridol's inhibition of P-TEFb (Cdk9/cyclin T1) activity.
  • To characterize the binding kinetics of flavopiridol to P-TEFb.
  • To develop a screening assay for compounds with similar binding properties to flavopiridol.

Main Methods:

  • Enzyme inhibition assays measuring P-TEFb phosphorylation of RNA polymerase II and the DRB sensitivity-inducing factor.
  • Development of a novel immobilized P-TEFb assay to assess drug binding.
  • In vivo nuclear run-on assays to compare transcriptional inhibition by flavopiridol and DRB.

Main Results:

  • Flavopiridol inhibits P-TEFb with an IC(50) directly related to enzyme concentration, indicating 1:1 stoichiometry and tight binding.
  • The drug remains bound to P-TEFb for minutes, even under high salt conditions or in the presence of excess DRB.
  • Nuclear run-on assays confirmed P-TEFb's essential role in most RNA polymerase II transcription in vivo.

Conclusions:

  • Flavopiridol exhibits very tight binding to P-TEFb, explaining its non-competitive inhibition kinetics.
  • An immobilized P-TEFb assay can be used to screen for novel inhibitors with similar binding characteristics.
  • P-TEFb is a critical component for the transcription of most RNA polymerase II molecules in vivo.

Related Concept Videos

Eukaryotic Transcription Inhibitors01:52

Eukaryotic Transcription Inhibitors

Certain biochemical processes, such as embryonic development and cell growth regulation, depend on the repression of specific genes. DNA binding proteins known as eukaryotic transcription inhibitors regulate the repression of gene expression in eukaryotes. The presence of these inhibitors at the required location and time in the cell is triggered by the presence of hormones and additional signals from other cells.
Eukaryotic transcription inhibitors usually contain two distinct domains, a DNA...
Transcription Attenuation in Prokaryotes02:42

Transcription Attenuation in Prokaryotes

Transcriptional attenuation occurs when RNA transcription is prematurely terminated due to the formation of a terminator mRNA hairpin structure.  Bacteria use these hairpins to regulate the transcription process and control the synthesis of several amino acids including histidine, lysine, threonine, and phenylalanine. Transcription attenuation takes place in the non-coding regions of mRNA.
There are several different mechanisms used to attenuate transcription. In ribosome mediated...
Inhibitors of Bacterial Protein Synthesis01:25

Inhibitors of Bacterial Protein Synthesis

Aminoglycosides constitute a highly potent class of bactericidal antibiotics that exert their antimicrobial effects by targeting the bacterial ribosome, specifically disrupting protein synthesis. These polycationic molecules consist of amino-modified sugars linked via glycosidic bonds to an aminocyclitol core such as 2-deoxystreptamine or streptamine. Their strong positive charges facilitate tight binding to the negatively charged phosphate backbone of ribosomal RNA (rRNA), primarily at the 16S...
Inhibitors of Bacterial DNA Synthesis01:28

Inhibitors of Bacterial DNA Synthesis

Bacterial pathogens depend on precise and efficient DNA replication to sustain infection. Two type II topoisomerases—DNA gyrase and topoisomerase IV—are critical to this process, as they resolve DNA supercoiling and unlink chromosomes during replication. Fluoroquinolones, synthetic derivatives of quinolones, exploit this mechanism by stabilizing the transient DNA–enzyme cleavage complex, preventing strand religation, and causing lethal double-strand breaks. These antibiotics are selectively...
Inhibitors of Viral Protein Synthesis01:30

Inhibitors of Viral Protein Synthesis

Protein synthesis is indispensable for viral replication, as viruses lack the cellular machinery required for this process and must hijack the host's translational apparatus. In response, host cells deploy a critical innate immune defense involving interferons, specialized cytokines that play a central role in inhibiting viral propagation.Upon viral detection, infected cells release interferons that bind to receptors on adjacent uninfected cells, activating the JAK-STAT signaling pathway and...
Inhibitors Of Virion Release01:25

Inhibitors Of Virion Release

Viral replication and dissemination rely on efficient mechanisms for host cell entry, genome replication, assembly, and release. Influenza viruses, such as types A and B, are negative-sense single-stranded RNA viruses with a segmented genome, that depend on two critical surface glycoproteins to carry out these processes: hemagglutinin (HA) and neuraminidase (NA). HA initiates infection by binding to sialic acid residues on the surface of host epithelial cells, facilitating receptor-mediated...