Protein Chemistry Laboratory, Department of Chemistry, Bose Institute, Kolkata 700 009, West Bengal, India.
Plant Physiol. 2013 Jun;162(2):1195-210. doi: 10.1104/pp.113.219022. Epub 2013 May 9.
DNA polymerase λ (Pol λ) is the sole member of family X DNA polymerase in plants and plays a crucial role in nuclear DNA damage repair. Here, we report the transcriptional up-regulation of Arabidopsis (Arabidopsis thaliana) AtPolλ in response to abiotic and genotoxic stress, including salinity and the DNA cross-linking agent mitomycin C (MMC). The increased sensitivity of atpolλ knockout mutants toward high salinity and MMC treatments, with higher levels of accumulation of double strand breaks (DSBs) than wild-type plants and delayed repair of DSBs, has suggested the requirement of Pol λ in DSB repair in plants. AtPolλ overexpression moderately complemented the deficiency of DSB repair capacity in atpolλ mutants. Transcriptional up-regulation of major nonhomologous end joining (NHEJ) pathway genes KU80, X-RAY CROSS COMPLEMENTATION PROTEIN4 (XRCC4), and DNA Ligase4 (Lig4) along with AtPolλ in Arabidopsis seedlings, and the increased sensitivity of atpolλ-2/atxrcc4 and atpolλ-2/atlig4 double mutants toward high salinity and MMC treatments, indicated the involvement of NHEJ-mediated repair of salinity- and MMC-induced DSBs. The suppressed expression of NHEJ genes in atpolλ mutants suggested complex transcriptional regulation of NHEJ genes. Pol λ interacted directly with XRCC4 and Lig4 via its N-terminal breast cancer-associated C terminus (BRCT) domain in a yeast two-hybrid system, while increased sensitivity of BRCT-deficient Pol λ-expressing transgenic atpolλ-2 mutants toward genotoxins indicated the importance of the BRCT domain of AtPolλ in mediating the interactions for processing DSBs. Our findings provide evidence for the direct involvement of DNA Pol λ in the repair of DSBs in a plant genome.
DNA 聚合酶 λ(Pol λ)是植物中唯一的 X 家族 DNA 聚合酶成员,在核 DNA 损伤修复中发挥着关键作用。在这里,我们报告了拟南芥(Arabidopsis thaliana)AtPolλ在非生物和遗传毒性应激(包括盐度和 DNA 交联剂丝裂霉素 C(MMC))下的转录上调。与野生型植物相比,atpolλ 敲除突变体在高盐度和 MMC 处理下的敏感性增加,双链断裂(DSBs)的积累水平更高,且 DSB 修复延迟,这表明 Pol λ在植物的 DSB 修复中是必需的。AtPolλ 的过表达适度补充了 atpolλ 突变体在 DSB 修复能力上的缺陷。在拟南芥幼苗中,AtPolλ与主要非同源末端连接(NHEJ)途径基因 KU80、X 射线交叉互补蛋白 4(XRCC4)和 DNA 连接酶 4(Lig4)的转录上调,以及 atpolλ-2/atxrcc4 和 atpolλ-2/atlig4 双突变体在高盐度和 MMC 处理下的敏感性增加,表明 NHEJ 介导的修复参与了盐度和 MMC 诱导的 DSBs。在 atpolλ 突变体中 NHEJ 基因的表达受抑制,表明 NHEJ 基因的转录调控复杂。在酵母双杂交系统中,Pol λ 通过其 N 端乳腺癌相关 C 端(BRCT)结构域与 XRCC4 和 Lig4 直接相互作用,而 BRCT 结构域缺失的 Pol λ 表达转基因 atpolλ-2 突变体在遗传毒性物质下的敏感性增加,表明 AtPolλ 的 BRCT 结构域在介导处理 DSBs 的相互作用中很重要。我们的研究结果为 DNA Pol λ 直接参与植物基因组中 DSB 的修复提供了证据。