Endodeoxyribonucleases

脱氧核糖核酸内切酶
  • 文章类型: Journal Article
    在减数分裂期间,链交换蛋白RAD51和DMC1的核蛋白纤丝对于通过同源重组(HR)修复SPO11产生的DNA双链断裂(DSB)至关重要。正和负RAD51/DMC1调节剂的平衡活性确保了适当的重组。Fidgetin样1(FIGNL1)先前显示出负调节人细胞中的RAD51。然而,FIGNL1在哺乳动物减数分裂重组中的作用仍然未知。这里,我们使用雄性种系特异性条件性敲除(cKO)小鼠模型破译FIGNL1和FIGNL1重组和有丝分裂相互作用调节因子(FIRRM)的减数分裂功能。FIGNL1和FIRRM都是完成小鼠精母细胞减数分裂前期所必需的。尽管在减数分裂DSB热点的ssDNA上有效募集DMC1,晚期重组中间体的形成在FirrmcKO和Fignl1cKO精母细胞中是有缺陷的。此外,FIGNL1-FIRRM复合物限制了RAD51和DMC1在完整染色质上的积累,独立于SPO11催化的DSB的形成。纯化的人FIGNL1ΔN改变了RAD51/DMC1核蛋白丝结构,并在体外抑制了链入侵。因此,这种复合物可能调节减数分裂DSB位点的RAD51和DMC1缔合,从而促进高效的链入侵和重组中间体的加工.
    During meiosis, nucleoprotein filaments of the strand exchange proteins RAD51 and DMC1 are crucial for repairing SPO11-generated DNA double-strand breaks (DSBs) by homologous recombination (HR). A balanced activity of positive and negative RAD51/DMC1 regulators ensures proper recombination. Fidgetin-like 1 (FIGNL1) was previously shown to negatively regulate RAD51 in human cells. However, FIGNL1\'s role during meiotic recombination in mammals remains unknown. Here, we decipher the meiotic functions of FIGNL1 and FIGNL1 Interacting Regulator of Recombination and Mitosis (FIRRM) using male germline-specific conditional knock-out (cKO) mouse models. Both FIGNL1 and FIRRM are required for completing meiotic prophase in mouse spermatocytes. Despite efficient recruitment of DMC1 on ssDNA at meiotic DSB hotspots, the formation of late recombination intermediates is defective in Firrm cKO and Fignl1 cKO spermatocytes. Moreover, the FIGNL1-FIRRM complex limits RAD51 and DMC1 accumulation on intact chromatin, independently from the formation of SPO11-catalyzed DSBs. Purified human FIGNL1ΔN alters the RAD51/DMC1 nucleoprotein filament structure and inhibits strand invasion in vitro. Thus, this complex might regulate RAD51 and DMC1 association at sites of meiotic DSBs to promote proficient strand invasion and processing of recombination intermediates.
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  • 文章类型: Journal Article
    单核苷酸多态性(SNP)检测是诊断疾病的关键,快速准确的诊断工具的开发对于治疗和预防至关重要。等位基因特异性聚合酶链反应(AS-PCR)被广泛用于检测具有多重功能的SNP,而基于CRISPR的技术在通过特异性指导RNA(gRNA)靶向突变位点方面提供了高灵敏度和特异性。在这项研究中,我们将CRISPR技术的高灵敏度和特异性与AS-PCR的多重功能相结合,实现了十个单碱基突变的同时检测。至于多重AS-PCR,我们的研究发现,靶向相同基因座的引物的竞争性抑制,加上这些引物不同的扩增效率,可能导致扩增效率降低。因此,我们调整并优化了引物组合和比例,以提高Multi-AS-PCR的扩增效率.最后,我们成功开发了一种新的巢式多AS-PCR-Cas12a方法用于多重SNP检测。为了评估这种方法在现实世界中的临床实用性,我们将其用于诊断利福平耐药的结核病(TB)。巢式多AS-PCR-Cas12a的检测限(LoD)为102aM,实现灵敏度,特异性,正预测值,阴性预测值为100%,93.33%,90.00%,100%,分别,与测序相比。总之,通过采用创新设计,将通用反向引物与十种不同的正向等位基因特异性引物结合在一起,巢式多AS-PCR-Cas12a技术有助于10个rpoB基因SNP的平行检测。这种方法还具有广泛的潜力,用于检测传染病和肿瘤中的耐药基因突变,以及特定遗传疾病的筛查。
    Single-nucleotide polymorphism (SNP) detection is critical for diagnosing diseases, and the development of rapid and accurate diagnostic tools is essential for treatment and prevention. Allele-specific polymerase chain reaction (AS-PCR) is widely used for detecting SNPs with multiplexing capabilities, while CRISPR-based technologies provide high sensitivity and specificity in targeting mutation sites through specific guide RNAs (gRNAs). In this study, we have integrated the high sensitivity and specificity of CRISPR technology with the multiplexing capabilities of AS-PCR, achieving the simultaneous detection of ten single-base mutations. As for Multi-AS-PCR, our research identified that competitive inhibition of primers targeting the same loci, coupled with divergent amplification efficiencies of these primers, could result in diminished amplification efficiency. Consequently, we adjusted and optimized primer combinations and ratios to enhance the amplification efficacy of Multi-AS-PCR. Finally, we successfully developed a novel nested Multi-AS-PCR-Cas12a method for multiplex SNPs detection. To evaluate the clinical utility of this method in a real-world setting, we applied it to diagnose rifampicin-resistant tuberculosis (TB). The limit of detection (LoD) for the nested Multi-AS-PCR-Cas12a was 102 aM, achieving sensitivity, specificity, positive predictive value, and negative predictive value of 100 %, 93.33 %, 90.00 %, and 100 %, respectively, compared to sequencing. In summary, by employing an innovative design that incorporates a universal reverse primer alongside ten distinct forward allele-specific primers, the nested Multi-AS-PCR-Cas12a technique facilitates the parallel detection of ten rpoB gene SNPs. This method also holds broad potential for the detection of drug-resistant gene mutations in infectious diseases and tumors, as well as for the screening of specific genetic disorders.
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  • 文章类型: Journal Article
    本研究旨在评估间歇性禁食(IF)和高强度间歇训练(HIIT)对形态学的影响。caspase非依赖性凋亡信号通路,和肌肉生长抑制素在健康大鼠比目鱼肌和腓肠肌(白色部分)中的表达。将60日龄雄性Wistar大鼠(n=60)分为四组:对照组(C),如果,高强度间歇训练(T),高强度间歇训练和间歇性禁食(T-IF)。C和T组每天随意接受食物;IF和T-IF每隔一天接受相同的标准食物。来自T和T-IF的动物经历HIIT方案,每周五次,持续12周。IF减少腓肠肌质量,增加比目鱼肌中的促凋亡蛋白凋亡诱导因子(AIF)和核酸内切酶G(EndoG)以及腓肠肌白色部分中切割与未切割PARP-1的比例和肌肉生长抑制素的表达。HIIT增加了AIF和凋亡阻遏物,比目鱼肌中的caspase募集结构域表达和腓肠肌白色部分的PARP-1裂解与总比例。IF和HIIT的组合减少了两个肌肉的纤维横截面积,EndoG和AIF表达增加,腓肠肌白色部分的切割与未切割的PARP-1比率降低。对IF和HIIT的肌肉反应直接受到肌纤维类型组成的影响,并受到调节,至少在某种程度上,肌肉生长抑制素和caspase非依赖性凋亡信号。
    This study aimed to evaluate the influence of combined intermittent fasting (IF) and high-intensity interval training (HIIT) on morphology, caspase-independent apoptosis signaling pathway, and myostatin expression in soleus and gastrocnemius (white portion) muscles from healthy rats. Sixty-day-old male Wistar rats (n = 60) were divided into four groups: control (C), IF, high-intensity-interval training (T), and high-intensity-interval training and intermittent fasting (T-IF). The C and T groups received ad libitum chow daily; IF and T-IF received the same standard chow every other day. Animals from T and T-IF underwent a HIIT protocol five times a week for 12 weeks. IF reduced gastrocnemius mass and increased pro-apoptotic proteins apoptosis-inducing factor (AIF) and endonuclease G (EndoG) in soleus and cleaved-to-non-cleaved PARP-1 ratio and myostatin expression in gastrocnemius white portion. HIIT increased AIF and apoptosis repressor with caspase recruitment domain expression in soleus and cleaved-to-total PARP-1 ratio in gastrocnemius muscle white portion. The combination of IF and HIIT reduced fiber cross-sectional area in both muscles, increased EndoG and AIF expression, and decreased cleaved-to-non-cleaved PARP-1 ratio in gastrocnemius muscle white portion. Muscle responses to IF and HIIT are directly impacted by the muscle fiber type composition and are modulated, at least in part, by myostatin and caspase-independent apoptosis signaling.
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  • 文章类型: Journal Article
    减数分裂重组是促进早期减数分裂同源染色体之间交换和遗传物质交换的关键过程。这涉及由Po11催化的受控双链断裂(DSB)形成。DSB在称为热点的特定基因组区域中表现出优先位置,它们的变异性与不同的Po11活动水平有关。我们改进了ChIP-Seq技术,叫做SPO-Seq,绘制酿酒酵母中Spo11特异性DSB的形成图。本章介绍了我们简化的方法以及用于处理数据并与现有DSB热点图进行比较的开发的生物信息学工具。通过这种实验和计算相结合的方法,我们的目标是加强我们的理解减数分裂重组和遗传交换过程中出芽酵母,通过应用一些修改,有可能将这种方法扩展到其他生物体。
    Meiotic recombination is a key process facilitating the formation of crossovers and the exchange of genetic material between homologous chromosomes in early meiosis. This involves controlled double-strand breaks (DSBs) formation catalyzed by Spo11. DSBs exhibit a preferential location in specific genomic regions referred to as hotspots, and their variability is tied to varying Spo11 activity levels. We have refined a ChIP-Seq technique, called SPO-Seq, to map Spo11-specific DSB formation in Saccharomyces cerevisiae. The chapter describes our streamlined approach and the developed bioinformatic tools for processing data and comparing with existing DSB hotspot maps. Through this combined experimental and computational approach, we aim to enhance our understanding of meiotic recombination and genetic exchange processes in budding yeast, with the potential to expand this methodology to other organisms by applying a few modifications.
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  • 文章类型: Journal Article
    在减数分裂期间,spo11产生DNA双链断裂诱导重组,在此过程中,共价连接到断裂两侧的5'末端。这种“共价复合物”在野生型细胞中是瞬时的,但积累的核酸酶突变体无法启动修复。此处提供的CC-seq方法详细介绍了如何在同步酿酒酵母减数分裂细胞中以链特异性核苷酸分辨率精度在全基因组范围内绘制这些Po11复合物的位置。
    During meiosis, Spo11 generates DNA double-strand breaks to induce recombination, becoming covalently attached to the 5\' ends on both sides of the break during this process. Such Spo11 \"covalent complexes\" are transient in wild-type cells, but accumulate in nuclease mutants unable to initiate repair. The CC-seq method presented here details how to map the location of these Spo11 complexes genome-wide with strand-specific nucleotide-resolution accuracy in synchronized Saccharomyces cerevisiae meiotic cells.
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  • 文章类型: Journal Article
    尽管小分子和重组蛋白具有增强同源定向修复(HDR)效率的潜力,单链DNA(ssDNA)供体,按照目前的设计和化学修饰,对于精确的基因编辑来说仍然是次优的。这里,我们筛选了DNA修复相关蛋白的偏向ssDNA结合序列,并将RAD51优选序列设计为ssDNA供体的HDR增强模块。具有这些模块的供体对RAD51表现出增强的亲和力,从而当与Cas9、nCas9和Cas12a合作时,增强各种基因组基因座和细胞类型的HDR效率。通过与非同源末端连接(NHEJ)或HDRobust策略的抑制剂组合,这些模块化ssDNA供体可实现高达90.03%(中位数74.81%)的HDR效率。靶向内源性蛋白质的HDR增强模块能够实现无化学修饰的策略,以提高ssDNA供体对精确基因编辑的功效。
    Despite the potential of small molecules and recombinant proteins to enhance the efficiency of homology-directed repair (HDR), single-stranded DNA (ssDNA) donors, as currently designed and chemically modified, remain suboptimal for precise gene editing. Here, we screen the biased ssDNA binding sequences of DNA repair-related proteins and engineer RAD51-preferred sequences into HDR-boosting modules for ssDNA donors. Donors with these modules exhibit an augmented affinity for RAD51, thereby enhancing HDR efficiency across various genomic loci and cell types when cooperated with Cas9, nCas9, and Cas12a. By combining with an inhibitor of non-homologous end joining (NHEJ) or the HDRobust strategy, these modular ssDNA donors achieve up to 90.03% (median 74.81%) HDR efficiency. The HDR-boosting modules targeting an endogenous protein enable a chemical modification-free strategy to improve the efficacy of ssDNA donors for precise gene editing.
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  • 文章类型: Journal Article
    表皮生长因子受体(EGFR)突变状态是预测酪氨酸激酶抑制剂治疗抗肿瘤疗效的关键。在EGFR突变中,E746-A750缺失尤其常见,准确定量可指导靶向治疗.这项研究引入了一种新颖的视觉传感技术,该技术使用由连接启动的环介导等温扩增(LAMP)指导的成簇规则间隔短回文重复序列(CRISPR)/Cas12a系统来检测EGFR中的delE746-A750突变。通过设计一对靶特异性茎环DNA探针来简化常规LAMP引物,能够选择性扩增靶DNA。CRISPR/Cas12a系统用于鉴定靶核酸并激活Cas12a反式切割活性。从而增强测定的特异性。此外,生物传感器利用高性能纳米材料,如三角形金纳米颗粒和石墨烯,以其大的比表面积而闻名,作为传感平台,有效地提高灵敏度。所提出的生物传感器表现出突出的特异性,实现17fM的低检测限(S/N=3)。因此,这一创新策略不仅拓展了CRISPR/Cas12a技术的应用范围,而且为现代医学临床诊断提供了一种有前景的方法.
    Epidermal growth factor receptor (EGFR) mutation status is pivotal in predicting the efficacy of tyrosine kinase inhibitor treatments against tumors. Among EGFR mutations, the E746-A750 deletion is particularly common and accurately quantifying it can guide targeted therapies. This study introduces a novel visual sensing technology using the clustered regularly interspaced short palindromic repeats (CRISPR)/Cas12a system guided by ligation-initiated loop-mediated isothermal amplification (LAMP) to detect the del E746-A750 mutation in EGFR. Conventional LAMP primers were simplified by designing a pair of target-specific stem-loop DNA probes, enabling selective amplification of the target DNA. The CRISPR/Cas12a system was employed to identify the target nucleic acid and activate Cas12a trans-cleavage activity, thereby enhancing the specificity of the assay. Furthermore, the biosensor utilized high-performance nanomaterials such as triangular gold nanoparticles and graphdiyne, known for their large specific surface area, to enhance sensitivity effectively as a sensing platform. The proposed biosensor demonstrated outstanding specificity, achieving a low detection limit of 17 fM (S/N = 3). Consequently, this innovative strategy not only expands the application scope of CRISPR/Cas12a technology but also introduces a promising approach for clinical diagnostics in modern medicine.
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  • 文章类型: Journal Article
    DNA识别对于双链DNA病毒的组装至关重要,特别是用于开始将病毒基因组包装到衣壳中。识别病毒DNA的关键成分是小末端酶蛋白。尽管之前的研究,DNA识别的分子机制仍然难以捉摸。这里,我们通过确定噬菌体HK97基因组中由小末端酶特异性识别的最小位点并通过冷冻EM确定该复合物的结构来解决这个问题。环状小终止酶采用了一种完全出乎意料的机制,其中DNA通过中央隧道传输,和序列特定的识别发生,因为它出现。这种识别源于两个相邻原聚体的N-和C-末端片段形成的亚结构,当DNA不存在时,它们是非结构化的。这种相互作用确保了小末端酶与DNA的连续接合,使其能够沿着DNA滑动,同时监测其序列。该机制允许精确地在特定cos序列处定位和激发包装起始和终止。
    DNA recognition is critical for assembly of double-stranded DNA viruses, particularly for the initiation of packaging the viral genome into the capsid. The key component that recognizes viral DNA is the small terminase protein. Despite prior studies, the molecular mechanism for DNA recognition remained elusive. Here, we address this question by identifying the minimal site in the bacteriophage HK97 genome specifically recognized by the small terminase and determining the structure of this complex by cryoEM. The circular small terminase employs an entirely unexpected mechanism in which DNA transits through the central tunnel, and sequence-specific recognition takes place as it emerges. This recognition stems from a substructure formed by the N- and C-terminal segments of two adjacent protomers which are unstructured when DNA is absent. Such interaction ensures continuous engagement of the small terminase with DNA, enabling it to slide along the DNA while simultaneously monitoring its sequence. This mechanism allows locating and instigating packaging initiation and termination precisely at the specific cos sequence.
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  • 文章类型: Journal Article
    随着在理解基因功能和治疗方面的重大进展,基因技术的潜在误用,特别是在通过基因兴奋剂(GD)进行体育运动的背景下,已经走到了前列。这引起了人们对需要对各种GD候选人进行即时测试以打击体育运动中的非法行为的担忧。然而,当前的GD检测技术,如PCR,缺乏现场复用检测所需的便携性。在这项研究中,我们介绍了一种基于微流体的集成芯片,用于多重基因掺杂检测,称为MGD-芯片。通过亲水和疏水通道的战略设计,MGD-Chip使RPA和CRISPR-Cas12a测定能够在设备上依次进行,确保最小的干扰和交叉污染。选择了六个潜在的GD候选物,并在1小时内在平台上同时成功测试。该平台对未扩增的靶质粒的检测灵敏度为0.1nM,对扩增的靶质粒的检测灵敏度为1aM。使用通过注射IGFI和EPO转基因建立的小鼠模型进行验证,证实了该平台在检测真实样品中基因掺杂的功效。这项技术,能够使用便携式元件检测多个目标,有望在体育赛事中进行实时GD检测,提供一个快速的,高度敏感,和用户友好的解决方案,以维护体育比赛的完整性。
    With significant advancements in understanding gene functions and therapy, the potential misuse of gene technologies, particularly in the context of sports through gene doping (GD), has come to the forefront. This raises concerns regarding the need for point-of-care testing of various GD candidates to counter illicit practices in sports. However, current GD detection techniques, such as PCR, lack the portability required for on-site multiplexed detection. In this study, we introduce an integrated microfluidics-based chip for multiplexed gene doping detection, termed MGD-Chip. Through the strategic design of hydrophilic and hydrophobic channels, MGD-Chip enables the RPA and CRISPR-Cas12a assays to be sequentially performed on the device, ensuring minimal interference and cross-contamination. Six potential GD candidates were selected and successfully tested simultaneously on the platform within 1 h. Demonstrating exceptional specificity, the platform achieved a detection sensitivity of 0.1 nM for unamplified target plasmids and 1 aM for amplified ones. Validation using mouse models established by injecting IGFI and EPO transgenes confirmed the platform\'s efficacy in detecting gene doping in real samples. This technology, capable of detecting multiple targets using portable elements, holds promise for real-time GD detection at sports events, offering a rapid, highly sensitive, and user-friendly solution to uphold the integrity of sports competitions.
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  • 文章类型: Journal Article
    背景:脱氧核糖核酸酶2(DNaseII)在清除细胞质双链DNA(dsDNA)中起关键作用。DNA酶II的缺乏导致DNA在细胞质中的积累。神经元中的持续dsDNA是衰老和神经退行性疾病(包括阿尔茨海默病(AD))的早期病理标志。然而,目前尚不清楚DNaseII和神经元细胞质dsDNA如何影响神经发病机制。Tau过度磷酸化是AD发病的关键因素。DNaseII和神经元细胞质dsDNA对神经元tau过度磷酸化的影响仍未阐明。
    方法:用免疫组织化学和免疫标记法检测不同年龄WT和Tau-P301S小鼠的神经元DNaseII和dsDNA水平,用ELISA法测定AD患者血浆中DNaseⅡ的水平。为了研究DNaseII对tau蛋白病变的影响,磷酸化tau的水平,磷酸激酶,磷酸酶突触蛋白,神经元DNaseII缺陷型WT小鼠脑中的神经胶质增生和促炎细胞因子,通过免疫标记评估神经元DNaseII缺陷型Tau-P301S小鼠和神经元DNaseII过表达的Tau-P301S小鼠,免疫印迹或ELISA。使用莫里斯水迷宫测试确定认知表现,Y-迷宫测试,新颖的物体识别测试和开放现场测试。
    结果:AD患者的大脑和血浆中DNaseII的水平显着降低。DNaseII还在WT和Tau-P301S小鼠的神经元中年龄依赖性地降低,随着dsDNA在细胞质中积累的增加。神经元DNA酶II缺乏诱导的DNA积累通过上调细胞周期蛋白依赖性样激酶5(CDK5)和钙/钙调蛋白激活的蛋白激酶II(CaMKII)和下调磷酸酶蛋白磷酸酶2A(PP2A)来驱动tau磷酸化。此外,DNaseII敲低诱导并显著加剧神经元丢失,WT和Tau-P301S小鼠的神经炎症和认知缺陷,分别,而神经元DNaseII的过表达显示出治疗益处。
    结论:DNaseII缺乏和细胞质dsDNA积累可以启动tau磷酸化,提示DNaseII是tau相关疾病的潜在治疗靶点。
    BACKGROUND: Deoxyribonuclease 2 (DNase II) plays a key role in clearing cytoplasmic double-stranded DNA (dsDNA). Deficiency of DNase II leads to DNA accumulation in the cytoplasm. Persistent dsDNA in neurons is an early pathological hallmark of senescence and neurodegenerative diseases including Alzheimer\'s disease (AD). However, it is not clear how DNase II and neuronal cytoplasmic dsDNA influence neuropathogenesis. Tau hyperphosphorylation is a key factor for the pathogenesis of AD. The effect of DNase II and neuronal cytoplasmic dsDNA on neuronal tau hyperphosphorylation remains unclarified.
    METHODS: The levels of neuronal DNase II and dsDNA in WT and Tau-P301S mice of different ages were measured by immunohistochemistry and immunolabeling, and the levels of DNase II in the plasma of AD patients were measured by ELISA. To investigate the impact of DNase II on tauopathy, the levels of phosphorylated tau, phosphokinase, phosphatase, synaptic proteins, gliosis and proinflammatory cytokines in the brains of neuronal DNase II-deficient WT mice, neuronal DNase II-deficient Tau-P301S mice and neuronal DNase II-overexpressing Tau-P301S mice were evaluated by immunolabeling, immunoblotting or ELISA. Cognitive performance was determined using the Morris water maze test, Y-maze test, novel object recognition test and open field test.
    RESULTS: The levels of DNase II were significantly decreased in the brains and the plasma of AD patients. DNase II also decreased age-dependently in the neurons of WT and Tau-P301S mice, along with increased dsDNA accumulation in the cytoplasm. The DNA accumulation induced by neuronal DNase II deficiency drove tau phosphorylation by upregulating cyclin-dependent-like kinase-5 (CDK5) and calcium/calmodulin activated protein kinase II (CaMKII) and downregulating phosphatase protein phosphatase 2A (PP2A). Moreover, DNase II knockdown induced and significantly exacerbated neuron loss, neuroinflammation and cognitive deficits in WT and Tau-P301S mice, respectively, while overexpression of neuronal DNase II exhibited therapeutic benefits.
    CONCLUSIONS: DNase II deficiency and cytoplasmic dsDNA accumulation can initiate tau phosphorylation, suggesting DNase II as a potential therapeutic target for tau-associated disorders.
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