Related Experiment Video
Updated: Aug 16, 2026

Strand-Specific Analysis of Proteins at Replicating DNA Strands by Enrichment and Sequencing of Protein-Associated Nascent DNA Method
Published on: May 2, 2025
Evolutionary clues to eukaryotic DNA clamp-loading mechanisms: analysis of the functional constraints imposed on
1Cold Spring Harbor Laboratory, 1 Bungtown Road, PO Box 100, Cold Spring Harbor, NY 11724, USA. neuwald@cshl.edu
Abstract:
Ring-shaped sliding clamps encircle DNA and bind to DNA polymerase, thereby preventing it from falling off during DNA replication. In eukaryotes, sliding clamps are loaded onto DNA by the replication factor C (RFC) complex, which consists of five distinct subunits (A-E), each of which contains an AAA+ module composed of a RecA-like alpha/beta ATPase domain followed by a helical domain. AAA+ ATPases mediate chaperone-like protein remodeling. Despite remarkable progress in our understanding of clamp loaders, it is still unclear how recognition of primed DNA by RFC triggers ATP hydrolysis and how hydrolysis leads to conformational changes that can load the clamp onto DNA. While these questions can, of course, only be resolved experimentally, the design of such experiments is itself non-trivial and requires that one first formulate the right hypotheses based on preliminary observations. The functional constraints imposed on protein sequences during evolution are potential sources of information in this regard, inasmuch as these presumably are due to and thus reflect underlying mechanisms. Here, rigorous statistical procedures are used to measure and compare the constraints imposed on various RFC clamp-loader subunits, each of which performs a related but somewhat different, specialized function. Visualization of these constraints, within the context of the RFC structure, provides clues regarding clamp-loader mechanisms--suggesting, for example, that RFC-A possesses a triggering component for DNA-dependent ATP hydrolysis. It also suggests that, starting with RFC-A, four RFC subunits (A-D) are sequentially activated through a propagated switching mechanism in which a conserved arginine swings away from a position that disrupts the catalytic Walker B region and into contact with DNA thread through the center of the RFC/clamp complex. Strong constraints near regions of interaction between subunits and with the clamp likewise provide clues regarding possible coupling of hydrolysis-driven conformational changes to the clamp's release and loading onto DNA.
Insights
Replication Factor C (RFC) clamp loaders use functional constraints to reveal DNA replication mechanisms. Statistical analysis suggests a sequential activation of RFC subunits, enabling clamp loading onto DNA.
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- Sliding clamps encircle DNA, essential for DNA polymerase function during replication.
- The Replication Factor C (RFC) complex loads these clamps onto DNA in eukaryotes.
- RFC comprises five subunits (A-E), each with an AAA+ module involved in protein remodeling.
Purpose of the Study:
- To investigate the mechanisms of RFC-mediated DNA clamp loading.
- To understand how DNA recognition by RFC triggers ATP hydrolysis and subsequent conformational changes.
- To formulate hypotheses for experimental design by analyzing evolutionary functional constraints.
Main Methods:
- Rigorous statistical procedures to measure and compare functional constraints on RFC subunits.
- Analysis of evolutionary constraints reflecting underlying molecular mechanisms.
- Visualization of constraints within the RFC structural context.
Main Results:
- Identified functional constraints on RFC subunits, suggesting specialized roles.
- RFC subunit A appears to possess a DNA-dependent ATP hydrolysis triggering component.
- Proposed a sequential activation mechanism (RFC subunits A-D) involving a propagated switching model.
Conclusions:
- Functional constraints provide insights into RFC clamp-loader mechanisms.
- A conserved arginine's movement is implicated in activating ATP hydrolysis and DNA interaction.
- Coupling of hydrolysis-driven conformational changes to clamp loading and release is suggested by subunit interaction constraints.
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