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Human ESC-derived vascular cells promote vascular regeneration in a HIF-1α dependent manner. 人 ESC 衍生血管细胞以 HIF-1α 依赖性方式促进血管再生。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2024-01-03 DOI: 10.1093/procel/pwad027
Jinghui Lei, Xiaoyu Jiang, Daoyuan Huang, Ying Jing, Shanshan Yang, Lingling Geng, Yupeng Yan, Fangshuo Zheng, Fang Cheng, Weiqi Zhang, Juan Carlos Izpisua Belmonte, Guang-Hui Liu, Si Wang, Jing Qu

Hypoxia-inducible factor (HIF-1α), a core transcription factor responding to changes in cellular oxygen levels, is closely associated with a wide range of physiological and pathological conditions. However, its differential impacts on vascular cell types and molecular programs modulating human vascular homeostasis and regeneration remain largely elusive. Here, we applied CRISPR/Cas9-mediated gene editing of human embryonic stem cells and directed differentiation to generate HIF-1α-deficient human vascular cells including vascular endothelial cells, vascular smooth muscle cells, and mesenchymal stem cells (MSCs), as a platform for discovering cell type-specific hypoxia-induced response mechanisms. Through comparative molecular profiling across cell types under normoxic and hypoxic conditions, we provide insight into the indispensable role of HIF-1α in the promotion of ischemic vascular regeneration. We found human MSCs to be the vascular cell type most susceptible to HIF-1α deficiency, and that transcriptional inactivation of ANKZF1, an effector of HIF-1α, impaired pro-angiogenic processes. Altogether, our findings deepen the understanding of HIF-1α in human angiogenesis and support further explorations of novel therapeutic strategies of vascular regeneration against ischemic damage.

缺氧诱导因子(HIF-1α)是对细胞氧水平变化做出反应的核心转录因子,与多种生理和病理状况密切相关。然而,它对血管细胞类型的不同影响以及调节人体血管稳态和再生的分子程序在很大程度上仍然难以捉摸。在这里,我们应用CRISPR/Cas9介导的人类胚胎干细胞基因编辑和定向分化技术生成了HIF-1α缺陷的人类血管细胞,包括血管内皮细胞、血管平滑肌细胞和间充质干细胞(MSCs),以此作为发现细胞类型特异性缺氧诱导反应机制的平台。通过对正常缺氧和缺氧条件下不同类型细胞的分子谱进行比较,我们深入了解了HIF-1α在促进缺血性血管再生中不可或缺的作用。我们发现人类间充质干细胞是最易受HIF-1α缺乏影响的血管细胞类型,而HIF-1α的效应因子ANKZF1的转录失活会损害促血管生成过程。总之,我们的研究结果加深了人们对HIF-1α在人类血管生成中的作用的理解,有助于进一步探索针对缺血性损伤的血管再生的新型治疗策略。
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引用次数: 0
Innovative insights into extrachromosomal circular DNAs in gynecologic tumors and reproduction. 对妇科肿瘤和生殖中染色体外环状 DNA 的创新见解。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2024-01-03 DOI: 10.1093/procel/pwad032
Ning Wu, Ling Wei, Zhipeng Zhu, Qiang Liu, Kailong Li, Fengbiao Mao, Jie Qiao, Xiaolu Zhao

Originating but free from chromosomal DNA, extrachromosomal circular DNAs (eccDNAs) are organized in circular form and have long been found in unicellular and multicellular eukaryotes. Their biogenesis and function are poorly understood as they are characterized by sequence homology with linear DNA, for which few detection methods are available. Recent advances in high-throughput sequencing technologies have revealed that eccDNAs play crucial roles in tumor formation, evolution, and drug resistance as well as aging, genomic diversity, and other biological processes, bringing it back to the research hotspot. Several mechanisms of eccDNA formation have been proposed, including the breakage-fusion-bridge (BFB) and translocation-deletion-amplification models. Gynecologic tumors and disorders of embryonic and fetal development are major threats to human reproductive health. The roles of eccDNAs in these pathological processes have been partially elucidated since the first discovery of eccDNA in pig sperm and the double minutes in ovarian cancer ascites. The present review summarized the research history, biogenesis, and currently available detection and analytical methods for eccDNAs and clarified their functions in gynecologic tumors and reproduction. We also proposed the application of eccDNAs as drug targets and liquid biopsy markers for prenatal diagnosis and the early detection, prognosis, and treatment of gynecologic tumors. This review lays theoretical foundations for future investigations into the complex regulatory networks of eccDNAs in vital physiological and pathological processes.

染色体外环状脱氧核糖核酸(eccDNA)起源于染色体脱氧核糖核酸(DNA),但不属于染色体脱氧核糖核酸(DNA),它们以环状形式组织,早已在单细胞和多细胞真核生物中发现。人们对它们的生物起源和功能知之甚少,因为它们的特征是序列与线性 DNA 同源,而线性 DNA 的检测方法却很少。最近,高通量测序技术的进步揭示了eccDNA在肿瘤形成、进化、耐药性以及衰老、基因组多样性和其他生物过程中的关键作用,使其再次成为研究热点。目前已提出多种cccDNA形成机制,包括断裂-融合-桥(BFB)和易位-缺失-扩增模型。妇科肿瘤以及胚胎和胎儿发育障碍是人类生殖健康的主要威胁。自首次在猪精子中发现cccDNA和在卵巢癌腹水中发现双分以来,cccDNA在这些病理过程中的作用已被部分阐明。本综述总结了cccDNAs的研究历史、生物发生以及目前可用的检测和分析方法,并阐明了它们在妇科肿瘤和生殖中的功能。我们还提出了将cccDNAs作为药物靶点和液体活检标志物应用于产前诊断和妇科肿瘤的早期检测、预后和治疗的建议。这篇综述为今后研究cccDNAs在重要生理和病理过程中的复杂调控网络奠定了理论基础。
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引用次数: 0
Correction to: SIRT7 antagonizes human stem cell aging as a heterochromatin stabilizer. 更正:SIRT7作为异染色质稳定剂拮抗人类干细胞衰老
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2024-01-03 DOI: 10.1093/procel/pwad037
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引用次数: 0
Biallelic variants in RBM42 cause a multisystem disorder with neurological, facial, cardiac, and musculoskeletal involvement. RBM42 的双叶变体会导致神经、面部、心脏和肌肉骨骼受累的多系统疾病。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2024-01-03 DOI: 10.1093/procel/pwad034
Yiyao Chen, Bingxin Yang, Xiaoyu Merlin Zhang, Songchang Chen, Minhui Wang, Liya Hu, Nina Pan, Shuyuan Li, Weihui Shi, Zhenhua Yang, Li Wang, Yajing Tan, Jian Wang, Yanlin Wang, Qinghe Xing, Zhonghua Ma, Jinsong Li, He-Feng Huang, Jinglan Zhang, Chenming Xu

Here, we report a previously unrecognized syndromic neurodevelopmental disorder associated with biallelic loss-of-function variants in the RBM42 gene. The patient is a 2-year-old female with severe central nervous system (CNS) abnormalities, hypotonia, hearing loss, congenital heart defects, and dysmorphic facial features. Familial whole-exome sequencing (WES) reveals that the patient has two compound heterozygous variants, c.304C>T (p.R102*) and c.1312G>A (p.A438T), in the RBM42 gene which encodes an integral component of splicing complex in the RNA-binding motif protein family. The p.A438T variant is in the RRM domain which impairs RBM42 protein stability in vivo. Additionally, p.A438T disrupts the interaction of RBM42 with hnRNP K, which is the causative gene for Au-Kline syndrome with overlapping disease characteristics seen in the index patient. The human R102* or A438T mutant protein failed to fully rescue the growth defects of RBM42 ortholog knockout ΔFgRbp1 in Fusarium while it was rescued by the wild-type (WT) human RBM42. A mouse model carrying Rbm42 compound heterozygous variants, c.280C>T (p.Q94*) and c.1306_1308delinsACA (p.A436T), demonstrated gross fetal developmental defects and most of the double mutant animals died by E13.5. RNA-seq data confirmed that Rbm42 was involved in neurological and myocardial functions with an essential role in alternative splicing (AS). Overall, we present clinical, genetic, and functional data to demonstrate that defects in RBM42 constitute the underlying etiology of a new neurodevelopmental disease which links the dysregulation of global AS to abnormal embryonic development.

在此,我们报告了一种以前未被发现的与 RBM42 基因双倍功能缺失变异有关的综合神经发育障碍。患者是一名两岁女性,患有严重的中枢神经系统(CNS)异常、肌张力低下、听力损失、先天性心脏缺陷和面部畸形。家族性全外显子组测序(WES)显示,患者的 RBM42 基因有两个复合杂合变异,分别为 c.304C>T (p.R102*) 和 c.1312G>A (p.A438T)。p.A438T 变体位于 RRM 结构域,会影响 RBM42 蛋白在体内的稳定性。此外,p.A438T 还破坏了 RBM42 与 hnRNP K 的相互作用,而 hnRNP K 是 Au-Kline 综合征的致病基因,与该患者的疾病特征重叠。人类 R102* 或 A438T 突变蛋白不能完全修复 RBM42 同源物基因敲除 ΔFgRbp1 在镰刀菌中的生长缺陷,而野生型(WT)人类 RBM42 则能修复这种缺陷。携带 Rbm42 复合杂合变体 c.280C>T (p.Q94*) 和 c.1306_1308delinsACA (p.A436T) 的小鼠模型显示出严重的胎儿发育缺陷,大多数双突变体动物在 E13.5 时死亡。RNA-seq数据证实,Rbm42参与神经和心肌功能,并在替代剪接(AS)中发挥重要作用。总之,我们提供的临床、遗传和功能数据证明,RBM42 的缺陷构成了一种新的神经发育疾病的潜在病因,这种疾病将全局 AS 的失调与胚胎发育异常联系在一起。
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引用次数: 0
An orally-available monovalent SMAC mimetic compound as a broad-spectrum antiviral. 一种可口服的单价 SMAC 拟态化合物,是一种广谱抗病毒药物。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2024-01-03 DOI: 10.1093/procel/pwad033
Miao Mei, Maria Antonietta Impagnatiello, Jun Jiao, Ulrich Reiser, Ulrike Tontsch-Grunt, Ju Zhang, Paul Nicklin, Bingke Yu, Yu Wang, Yuan He, Xu Tan
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引用次数: 0
Strategies for generating mouse model resources of human disease. 产生人类疾病小鼠模型资源的策略。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2023-12-01 DOI: 10.1093/procel/pwad011
Jirong Pan, Ling Zhang, Zhibing Huang, Dalu Zhao, He Li, Yanan Fu, Meng Wang, Borui Chen, Fuad A Iraqi, Grant Morahan, Chuan Qin
Graphical Abstract Graphical Abstract
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引用次数: 1
Deciphering the placental abnormalities associated with somatic cell nuclear transfer at single-nucleus resolution. 在单核分辨率下解读与体细胞核移植相关的胎盘异常。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2023-12-01 DOI: 10.1093/procel/pwad030
Liyuan Jiang, Xin Wang, Leyun Wang, Sinan Ma, Yali Ding, Chao Liu, Siqi Wang, Xuan Shao, Ying Zhang, Zhikun Li, Wei Li, Guihai Feng, Qi Zhou
Graphical Abstract Graphical Abstract
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引用次数: 1
CRISPR-assisted transcription activation by phase-separation proteins. 通过相分离蛋白的crispr辅助转录激活。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2023-12-01 DOI: 10.1093/procel/pwad013
Jiaqi Liu, Yuxi Chen, Baoting Nong, Xiao Luo, Kaixin Cui, Zhan Li, Pengfei Zhang, Wenqiong Tan, Yue Yang, Wenbin Ma, Puping Liang, Zhou Songyang

The clustered regularly interspaced short palindromic repeats (CRISPR)-Cas9 system has been widely used for genome engineering and transcriptional regulation in many different organisms. Current CRISPR-activation (CRISPRa) platforms often require multiple components because of inefficient transcriptional activation. Here, we fused different phase-separation proteins to dCas9-VPR (dCas9-VP64-P65-RTA) and observed robust increases in transcriptional activation efficiency. Notably, human NUP98 (nucleoporin 98) and FUS (fused in sarcoma) IDR domains were best at enhancing dCas9-VPR activity, with dCas9-VPR-FUS IDR (VPRF) outperforming the other CRISPRa systems tested in this study in both activation efficiency and system simplicity. dCas9-VPRF overcomes the target strand bias and widens gRNA designing windows without affecting the off-target effect of dCas9-VPR. These findings demonstrate the feasibility of using phase-separation proteins to assist in the regulation of gene expression and support the broad appeal of the dCas9-VPRF system in basic and clinical applications.

聚集的规则间隔短回文重复序列(CRISPR)-Cas9系统已广泛用于许多不同生物的基因组工程和转录调控。由于转录激活效率低下,目前的crispr激活(CRISPRa)平台通常需要多个组件。在这里,我们将不同的相分离蛋白与dCas9-VPR (dCas9-VP64-P65-RTA)融合,并观察到转录激活效率的显著提高。值得注意的是,人类NUP98(核孔蛋白98)和FUS(融合在肉瘤中)IDR结构域在增强dCas9-VPR活性方面表现最好,其中dCas9-VPR-FUS IDR (VPRF)在激活效率和系统简单性方面都优于本研究中测试的其他CRISPRa系统。dCas9-VPR克服了靶链偏置,在不影响dCas9-VPR脱靶效应的情况下,拓宽了gRNA的设计窗口。这些发现证明了使用相分离蛋白辅助基因表达调控的可行性,并支持dCas9-VPRF系统在基础和临床应用中的广泛吸引力。
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引用次数: 2
A single-nucleus transcriptomic atlas of primate testicular aging reveals exhaustion of the spermatogonial stem cell reservoir and loss of Sertoli cell homeostasis. 灵长类动物睾丸衰老的单核转录组图谱揭示了精原干细胞储存库的衰竭和支持细胞稳态的丧失。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2023-12-01 DOI: 10.1093/procel/pwac057
Daoyuan Huang, Yuesheng Zuo, Chen Zhang, Guoqiang Sun, Ying Jing, Jinghui Lei, Shuai Ma, Shuhui Sun, Huifen Lu, Yusheng Cai, Weiqi Zhang, Fei Gao, Andy Peng Xiang, Juan Carlos Izpisua Belmonte, Guang-Hui Liu, Jing Qu, Si Wang

The testis is pivotal for male reproduction, and its progressive functional decline in aging is associated with infertility. However, the regulatory mechanism underlying primate testicular aging remains largely elusive. Here, we resolve the aging-related cellular and molecular alterations of primate testicular aging by establishing a single-nucleus transcriptomic atlas. Gene-expression patterns along the spermatogenesis trajectory revealed molecular programs associated with attrition of spermatogonial stem cell reservoir, disturbed meiosis and impaired spermiogenesis along the sequential continuum. Remarkably, Sertoli cell was identified as the cell type most susceptible to aging, given its deeply perturbed age-associated transcriptional profiles. Concomitantly, downregulation of the transcription factor Wilms' Tumor 1 (WT1), essential for Sertoli cell homeostasis, was associated with accelerated cellular senescence, disrupted tight junctions, and a compromised cell identity signature, which altogether may help create a hostile microenvironment for spermatogenesis. Collectively, our study depicts in-depth transcriptomic traits of non-human primate (NHP) testicular aging at single-cell resolution, providing potential diagnostic biomarkers and targets for therapeutic interventions against testicular aging and age-related male reproductive diseases.

睾丸是男性生殖的关键,随着年龄的增长,其功能的逐渐下降与不孕症有关。然而,灵长类动物睾丸衰老的调控机制在很大程度上仍然难以捉摸。在这里,我们通过建立一个单核转录组图谱来解决灵长类动物睾丸衰老相关的细胞和分子改变。沿着精子发生轨迹的基因表达模式揭示了与精子干细胞库消耗、减数分裂紊乱和精子发生受损相关的分子程序。值得注意的是,Sertoli细胞被认为是最容易衰老的细胞类型,因为它与年龄相关的转录谱受到严重干扰。同时,对支持细胞稳态至关重要的转录因子Wilms' Tumor 1 (WT1)的下调与细胞衰老加速、紧密连接中断和细胞身份特征受损有关,这些都可能有助于为精子发生创造一个不利的微环境。总的来说,我们的研究在单细胞分辨率下深入描述了非人类灵长类动物(NHP)睾丸衰老的转录组特征,为睾丸衰老和与年龄相关的男性生殖疾病的治疗干预提供了潜在的诊断生物标志物和靶点。
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引用次数: 6
Cryo-EM structures of a prokaryotic heme transporter CydDC. 原核血红素转运蛋白CydDC的低温电镜结构。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2023-12-01 DOI: 10.1093/procel/pwad022
Chen Zhu, Yanfeng Shi, Jing Yu, Wenhao Zhao, Lingqiao Li, Jingxi Liang, Xiaolin Yang, Bing Zhang, Yao Zhao, Yan Gao, Xiaobo Chen, Xiuna Yang, Lu Zhang, Luke W Guddat, Lei Liu, Haitao Yang, Zihe Rao, Jun Li
{"title":"Cryo-EM structures of a prokaryotic heme transporter CydDC.","authors":"Chen Zhu, Yanfeng Shi, Jing Yu, Wenhao Zhao, Lingqiao Li, Jingxi Liang, Xiaolin Yang, Bing Zhang, Yao Zhao, Yan Gao, Xiaobo Chen, Xiuna Yang, Lu Zhang, Luke W Guddat, Lei Liu, Haitao Yang, Zihe Rao, Jun Li","doi":"10.1093/procel/pwad022","DOIUrl":"10.1093/procel/pwad022","url":null,"abstract":"","PeriodicalId":20790,"journal":{"name":"Protein & Cell","volume":" ","pages":"919-923"},"PeriodicalIF":21.1,"publicationDate":"2023-12-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10691846/pdf/","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"9411628","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":1,"RegionCategory":"生物学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"OA","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
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