8.11
DNA 왜곡 및 손상
세포는 DNA를 손상시키고 돌연변이를 생성할 수 있는 환경 요인인 돌연변이원에 정기적으로 노출됩니다. UV 방사선은 가장 흔한 돌연변이 유발원 중 하나이며 DNA에 상당한 변화를 일으키는 것으로 추정됩니다. 여기에는 DNA 복제나 전사를 차단할 수…
뉴클레오티드 절제 복구(NER)는 자외선 및 화학적 발암 물질로 인한 부피가 큰 DNA 병변을 고정합니다.
피리미딘 이량체와 같은 이러한 부피가 큰 병변은 DNA 나선을 왜곡하고 DNA 복제 및 전사를 방해합니다.
대장균에서 복구 단백질인 UvrA와 UvrB는 게놈 DNA에서 구조적 병변을 스캔하는 복합체를 형성합니다.
병변을 만나면 UvrA가 해리되어 UvrB가 왜곡된 DNA에 단단히 결합하게 됩니다.
그런 다음 DNA에 결합된 UvrB는 엔도뉴클레아제인 UvrC를 모집하여 병변의 양쪽을 절개합니다.
다음으로, UvrD 헬리케이스는 DNA를 풀고 병변을 운반하는 단편을 절제합니다.
절제 후 DNA 중합효소는 새로운 상보적 뉴클레오티드로 그 틈을 메우고, 효소 DNA 리가제는 새 DNA와 기존 DNA 사이의 틈을 밀봉하여 복구를 완료합니다.
또는, 활발하게 전사하는 RNA 중합효소가 부피가 큰 병변을 만나면 UvrB를 병변 부위로 직접 모집할 수 있습니다.
이는 복구를 완료하고 전사를 계속하기 위해 일반 NER과 동일한 방식으로 진행되는 전사 결합 뉴클레오티드 절제 복구를 시작합니다.
Q1: What types of DNA damage does nucleotide excision repair fix?
Nucleotide excision repair fixes bulky DNA lesions caused by UV radiation and chemical carcinogens, such as pyrimidine dimers. These lesions distort the DNA helix and interfere with DNA replication and transcription. If left unrepaired, they can cause mutations leading to cancer or disease depending on which DNA sequences are disrupted.
Q2: How do UvrA and UvrB proteins identify damaged DNA in prokaryotes?
In E. coli, UvrA and UvrB form a complex that scans genomic DNA for structural lesions. When the complex encounters a lesion, UvrA dissociates and UvrB binds tightly to the distorted DNA region. This recognition of physical aberrations allows the repair machinery to flag the damaged area for removal and repair.
Q3: What is the role of UvrC endonuclease in nucleotide excision repair?
UvrC is an endonuclease recruited by DNA-bound UvrB that makes incisions on either side of the lesion. These cuts allow the damaged DNA fragment to be excised from the strand. Following excision, DNA polymerase fills the gap with new complementary nucleotides, and DNA ligase seals the repair.
Q4: How does transcription-coupled nucleotide excision repair differ from regular NER?
Transcription-coupled NER is initiated when an actively transcribing RNA polymerase encounters a bulky lesion and directly recruits UvrB to the damage site. This alternative pathway proceeds identically to regular NER but is triggered by transcription blockage rather than routine DNA scanning, allowing repair and transcription to resume.
Q5: Why do eukaryotes require more proteins than prokaryotes for nucleotide excision repair?
Unlike prokaryotes, which use three proteins—UvrA, UvrB, and UvrC—eukaryotes employ more than a dozen proteins to regulate nucleotide excision repair. This increased complexity reflects the greater size and organization of eukaryotic genomes and the need for more sophisticated damage recognition and coordination mechanisms.
Q6: What happens when nucleotide excision repair genes are mutated in humans?
Mutations in the NER pathway cause diseases such as Xeroderma pigmentosum, associated with a 2000-fold increase in skin cancer incidence. XP patients are highly sensitive to UV exposure, developing severe burns after brief sunlight exposure, and often show premature aging and neurological abnormalities. Without functional repair, DNA damage accumulates, leading to abnormal cell death or cancerous tumors.
Q7: What is the final step after DNA polymerase fills the gap in nucleotide excision repair?
After DNA polymerase fills the gap with new complementary nucleotides, the enzyme DNA ligase seals the gap between the new and old DNA strands. This ligation completes the nucleotide excision repair process and restores the integrity of the DNA molecule.