Javascript must be enabled to continue!
Kinetic gating mechanism of DNA damage recognition by Rad4/XPC
View through CrossRef
Abstract
The xeroderma pigmentosum C (XPC) complex initiates nucleotide excision repair by recognizing DNA lesions before recruiting downstream factors. How XPC detects structurally diverse lesions embedded within normal DNA is unknown. Here we present a crystal structure that captures the yeast XPC orthologue (Rad4) on a single register of undamaged DNA. The structure shows that a disulphide-tethered Rad4 flips out normal nucleotides and adopts a conformation similar to that seen with damaged DNA. Contrary to many DNA repair enzymes that can directly reject non-target sites as structural misfits, our results suggest that Rad4/XPC uses a kinetic gating mechanism whereby lesion selectivity arises from the kinetic competition between DNA opening and the residence time of Rad4/XPC per site. This mechanism is further supported by measurements of Rad4-induced lesion-opening times using temperature-jump perturbation spectroscopy. Kinetic gating may be a general mechanism used by site-specific DNA-binding proteins to minimize time-consuming interrogations of non-target sites.
Springer Science and Business Media LLC
Title: Kinetic gating mechanism of DNA damage recognition by Rad4/XPC
Description:
Abstract
The xeroderma pigmentosum C (XPC) complex initiates nucleotide excision repair by recognizing DNA lesions before recruiting downstream factors.
How XPC detects structurally diverse lesions embedded within normal DNA is unknown.
Here we present a crystal structure that captures the yeast XPC orthologue (Rad4) on a single register of undamaged DNA.
The structure shows that a disulphide-tethered Rad4 flips out normal nucleotides and adopts a conformation similar to that seen with damaged DNA.
Contrary to many DNA repair enzymes that can directly reject non-target sites as structural misfits, our results suggest that Rad4/XPC uses a kinetic gating mechanism whereby lesion selectivity arises from the kinetic competition between DNA opening and the residence time of Rad4/XPC per site.
This mechanism is further supported by measurements of Rad4-induced lesion-opening times using temperature-jump perturbation spectroscopy.
Kinetic gating may be a general mechanism used by site-specific DNA-binding proteins to minimize time-consuming interrogations of non-target sites.
Related Results
XPC loss-of-function triggers melanomagenesis through CDKN2A downregulation
XPC loss-of-function triggers melanomagenesis through CDKN2A downregulation
ABSTRACT
We identified a novel XPC variant, c.2420+5G>A (XPCvar), in siblings with multiple melanomas, inherited alongside c.779+1G>T, which results in an absent or disrupted...
RAD4 and RAD23/HMR Contribute to Arabidopsis UV Tolerance
RAD4 and RAD23/HMR Contribute to Arabidopsis UV Tolerance
In plants, exposure to solar ultraviolet (UV) light is unavoidable, resulting in DNA damage. Damaged DNA causes mutations, replication arrest, and cell death, thus efficient repair...
RNAi and Chemical-Based High Content Screening for the Normalization of XPC Phenotyope
RNAi and Chemical-Based High Content Screening for the Normalization of XPC Phenotyope
Criblage à haut contenu à base d'ARNi et de produits chimiques pour la normalisation du phénotype XPC
La Xeroderma Pigmentosium C (XP-C) est une génodermatose autos...
Xeroderma Pigmentosum C: A Valuable Tool to Decipher the Signaling Pathways in Skin Cancers
Xeroderma Pigmentosum C: A Valuable Tool to Decipher the Signaling Pathways in Skin Cancers
Xeroderma pigmentosum (XP) is a rare autosomal genodermatosis that manifests clinically with pronounced sensitivity to ultraviolet (UV) radiation and the high probability of the oc...
Twist-open mechanism of DNA damage recognition by the Rad4/XPC nucleotide excision repair complex
Twist-open mechanism of DNA damage recognition by the Rad4/XPC nucleotide excision repair complex
Significance
Impairment of global genome nucleotide excision repair (NER) leads to extreme sun sensitivity and predisposition to cancers. The xeroderma pigmentosu...
Synthetic rescue of XPC phenotype via PIK3C3 downregulation
Synthetic rescue of XPC phenotype via PIK3C3 downregulation
Abstract
Xeroderma Pigmentosum C is a dermal hereditary disease. It is caused by a mutation in the DNA damage recognition protein XPC that belongs to the Nucleotide...
Synthetic rescue of XPC phenotype via PIK3C3 downregulation
Synthetic rescue of XPC phenotype via PIK3C3 downregulation
Abstract
Xeroderma Pigmentosum C is a dermal hereditary disease. It is caused by a mutation in the DNA damage recognition protein XPC that belongs to the Nucleotide excisio...
Genome wide hypomethylation and youth-associated DNA gap reduction promoting DNA damage and senescence-associated pathogenesis
Genome wide hypomethylation and youth-associated DNA gap reduction promoting DNA damage and senescence-associated pathogenesis
Abstract
Background: Age-associated epigenetic alteration is the underlying cause of DNA damage in aging cells. Two types of youth-associated DNA-protection epigenetic mark...

