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Preparation of fatty acid solutions for investigating lipid signaling, metabolism, and lipid droplets. 制备脂肪酸溶液,用于研究脂质信号、新陈代谢和脂滴。
IF 13.6 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2025-07-19 DOI: 10.1093/procel/pwae068
Shuyan Zhang, Mengwei Zhang, Shimeng Xu, Xiaochuan Fu, Qiumin Liao, Bin Pan, Liujuan Cui, Pingsheng Liu
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引用次数: 0
Amino acid metabolism in breast cancer: pathogenic drivers and therapeutic opportunities. 乳腺癌中的氨基酸代谢:致病因素和治疗机会。
IF 13.6 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2025-07-19 DOI: 10.1093/procel/pwaf011
Yawen Liu, Xiangyun Zong, Patricia Altea-Manzano, Jie Fu

Amino acid metabolism plays a critical role in the progression and development of breast cancer. Cancer cells, including those in breast cancer, reprogram amino acid metabolism to meet the demands of rapid proliferation, survival, and immune evasion. This includes alterations in the uptake and utilization of amino acids, such as glutamine, serine, glycine, and arginine, which provide essential building blocks for biosynthesis, energy production, and redox homeostasis. Notably, the metabolic phenotypes of breast cancer cells vary across molecular subtypes and disease stages, emphasizing the need for patient stratification and personalized therapeutic strategies. Advances in multi-level diagnostics, including phenotyping and predictive tools, such as AI-based analysis and body fluid profiling, have highlighted the potential for tailoring treatments to individual metabolic profiles. Enzymes, such as glutaminase and serine hydroxymethyltransferase, often upregulated in breast cancer, represent promising therapeutic targets. Understanding the interplay between amino acid metabolism and breast cancer biology, alongside the integration of personalized medicine approaches, can uncover novel insights into tumor progression and guide the development of precision therapies. This review explores the metabolic pathways of amino acids in breast cancer, with a focus on their implications for personalized treatment strategies.

氨基酸代谢在乳腺癌的发生发展中起着至关重要的作用。癌症细胞,包括乳腺癌细胞,通过重新编程氨基酸代谢来满足快速增殖、生存和免疫逃避的需要。这包括谷氨酰胺、丝氨酸、甘氨酸和精氨酸等氨基酸的摄取和利用的改变,这些氨基酸为生物合成、能量产生和氧化还原稳态提供了必要的基础。值得注意的是,乳腺癌细胞的代谢表型因分子亚型和疾病分期而异,强调了患者分层和个性化治疗策略的必要性。多层次诊断技术的进步,包括表型分析和预测工具,如基于人工智能的分析和体液谱分析,突出了针对个体代谢谱定制治疗的潜力。谷氨酰胺酶和丝氨酸羟甲基转移酶等在乳腺癌中经常上调的酶是有希望的治疗靶点。了解氨基酸代谢与乳腺癌生物学之间的相互作用,以及个性化医学方法的整合,可以揭示肿瘤进展的新见解,并指导精确治疗的发展。这篇综述探讨了氨基酸在乳腺癌中的代谢途径,重点是它们对个性化治疗策略的影响。
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引用次数: 0
Chromatin landscape alteration uncovers multiple transcriptional circuits during memory CD8+ T-cell differentiation. 染色质景观改变揭示了记忆 CD8+ T 细胞分化过程中的多个转录回路。
IF 13.6 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2025-07-19 DOI: 10.1093/procel/pwaf003
Qiao Liu, Wei Dong, Rong Liu, Luming Xu, Ling Ran, Ziying Xie, Shun Lei, Xingxing Su, Zhengliang Yue, Dan Xiong, Lisha Wang, Shuqiong Wen, Yan Zhang, Jianjun Hu, Chenxi Qin, Yongchang Chen, Bo Zhu, Xiangyu Chen, Xia Wu, Lifan Xu, Qizhao Huang, Yingjiao Cao, Lilin Ye, Zhonghui Tang

Extensive epigenetic reprogramming involves in memory CD8+ T-cell differentiation. The elaborate epigenetic rewiring underlying the heterogeneous functional states of CD8+ T cells remains hidden. Here, we profile single-cell chromatin accessibility and map enhancer-promoter interactomes to characterize the differentiation trajectory of memory CD8+ T cells. We reveal that under distinct epigenetic regulations, the early activated CD8+ T cells divergently originated for short-lived effector and memory precursor effector cells. We also uncover a defined epigenetic rewiring leading to the conversion from effector memory to central memory cells during memory formation. Additionally, we illustrate chromatin regulatory mechanisms underlying long-lasting versus transient transcription regulation during memory differentiation. Finally, we confirm the essential roles of Sox4 and Nrf2 in developing memory precursor effector and effector memory cells, respectively, and validate cell state-specific enhancers in regulating Il7r using CRISPR-Cas9. Our data pave the way for understanding the mechanism underlying epigenetic memory formation in CD8+ T-cell differentiation.

广泛的表观遗传重编程涉及记忆CD8+ t细胞分化。隐藏在CD8+ T细胞异质功能状态下的复杂的表观遗传重新布线仍然是未知的。在这里,我们分析了单细胞染色质可及性和增强子-启动子相互作用组,以表征记忆性CD8+ T细胞的分化轨迹。我们发现,在不同的表观遗传调控下,早期活化的CD8+ T细胞分化为短命效应细胞和记忆前体效应细胞。我们还发现,在记忆形成过程中,表观遗传重新布线导致从效应记忆细胞到中枢记忆细胞的转换。此外,我们阐明了在记忆分化过程中染色质调控机制的长期与短暂的转录调控。最后,我们确认了Sox4和Nrf2在形成记忆前体效应细胞和效应记忆细胞中的重要作用,并利用CRISPR-Cas9验证了细胞状态特异性增强子在调节Il7r中的作用。我们的数据为理解CD8+ t细胞分化中表观遗传记忆形成的机制铺平了道路。
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引用次数: 0
Dynamin 1-mediated endocytic recycling of glycosylated N-cadherin sustains the plastic mesenchymal state to promote ovarian cancer metastasis. 动力蛋白1介导的糖基化n -钙粘蛋白的内吞循环维持可塑间质状态,促进卵巢癌转移。
IF 13.6 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2025-07-19 DOI: 10.1093/procel/pwaf019
Yuee Cai, Zhangyan Guan, Yin Tong, Weiyang Zhao, Jiangwen Zhang, Ling Peng, Philip P C Ip, Sally K Y To, Alice S T Wong
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引用次数: 0
A minimally invasive, fast on/off "odorgenetic" method to manipulate physiology. 一种微创、快速开/关的“气味生成”方法来操纵生理学。
IF 13.6 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2025-07-19 DOI: 10.1093/procel/pwae072
Yanqiong Wu, Xueqin Xu, Shanchun Su, Zeyong Yang, Xincai Hao, Wei Lu, Jianghong He, Juntao Hu, Xiaohui Li, Hong Yu, Xiuqin Yu, Yangqiao Xiao, Shuangshuang Lu, Linhan Wang, Wei Tian, Hongbing Xiang, Gang Cao, Wen Jun Tu, Changbin Ke
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引用次数: 0
Correction to: ALKBH1 deficiency leads to loss of homeostasis in human diploid somatic cells. 更正:ALKBH1缺乏导致人类二倍体体细胞失去稳态。
IF 13.6 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2025-07-19 DOI: 10.1093/procel/pwaf008
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引用次数: 0
BiFC and FACS-based CRISPR screening revealed that QKI promotes PABPN1 LLPS in colorectal cancer cells. bbic和基于facs的CRISPR筛选显示,QKI促进结直肠癌细胞中的PABPN1 LLPS。
IF 13.6 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2025-07-19 DOI: 10.1093/procel/pwaf022
Mengxia Li, Zhijie Hu, Yingye Huang, Yuting Han, Cheng Liang, Yuchi Liu, Runze Wu, Xin Lu, Ke Deng, Susu Liu, Xin Ou, Yuwei Li, Chao Liu, Xuening Li, Jingting Liang, Yonggui Fu, Anlong Xu

Protein liquid-liquid phase separation (LLPS), a pivotal phenomenon intricately linked to cellular processes, is regulated by various other proteins. However, there is still a lack of high-throughput methods for screening protein regulators of LLPS in target proteins. Here, we developed a CRISPR/Cas9-based screening method to identify protein phase separation regulators by integrating bimolecular fluorescence complementation (BiFC) and fluorescence-activated cell sorting (FACS). Using this newly developed method, we screened the RNA-binding proteins that regulate PABPN1 phase separation and identified the tumor suppressor QKI as a promoter of PABPN1 phase separation. Furthermore, QKI exhibits decreased expression levels and diminished nuclear localization in colorectal cancer cells, resulting in reduced PABPN1 phase separation, which, in turn, promotes alternative polyadenylation (APA), cell proliferation, and migration in colorectal cancer.

蛋白质液-液相分离(LLPS)是一种与细胞过程错综复杂相关的关键现象,受多种其他蛋白质的调节。然而,目前仍缺乏高通量的方法来筛选LLPS靶蛋白中的蛋白调节因子。在这里,我们开发了一种基于CRISPR/ cas9的筛选方法,通过整合双分子荧光互补(BiFC)和荧光激活细胞分选(FACS)来鉴定蛋白质相分离调节因子。利用这种新开发的方法,我们筛选了调节PABPN1相分离的rna结合蛋白,并鉴定出肿瘤抑制因子QKI是PABPN1相分离的启动子。此外,QKI在结直肠癌细胞中表现出表达水平下降和核定位减少,导致PABPN1相分离减少,从而促进结直肠癌细胞的选择性聚腺苷化(APA)、细胞增殖和迁移。
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引用次数: 0
Synergistic innovation in organ-on-a-chip and organoid technologies: Reshaping the future of disease modeling, drug development and precision medicine. 芯片上器官和类器官技术的协同创新:重塑疾病建模、药物开发和精准医学的未来。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2025-07-13 DOI: 10.1093/procel/pwaf058
Bing Li,Yuanjun Tang,Zhanya Huang,Lijun Ma,Jiagui Song,Lixiang Xue
FDA issued guidance on April 10th, 2025 to phase out animal trials in favor of organoids and organ-on-a-chip systems. This pivotal move was swiftly followed by National Institutes of Health (NIH) on April 29th, when it inaugurated the Office of Research Innovation, Validation, and Application (ORIVA). The establishment of ORIVA aims to spearhead the advancement of human-centric organ-on-a-chip technologies, marking a major stride toward more accurate, ethical, and efficient research methods in the biomedical field. Compared to traditional 2D cell cultures and animal models, organ-on-a-chip systems enable precise control of hydrodynamic parameters and biomechanical microenvironments. This review systematically elaborates on applications of single-organ, multi-organ, and organoid-on-a-chip technologies in modeling complex diseases, host-microbiome interactions, inter-organ physiological networks, and quantitative prediction of pharmacokinetics, toxicity responses, and personalized therapies. Furthermore, the core challenges in translating these technologies to pharmaceutical development and clinical practice are critically analyzed. With interdisciplinary integration of materials engineering, biosensing, and artificial intelligence, organ-on-a-chip technologies are transcending the limitations of conventional preclinical research. Their strategic value as 'patient surrogates' is poised to accelerate breakthroughs in precision medicine and rare disease treatments.
FDA于2025年4月10日发布指导意见,逐步淘汰动物试验,转而支持类器官和器官芯片系统。4月29日,美国国立卫生研究院(NIH)迅速跟进了这一关键举措,成立了研究创新、验证和应用办公室(ORIVA)。ORIVA的成立旨在引领以人类为中心的器官芯片技术的发展,标志着在生物医学领域朝着更准确、更伦理、更高效的研究方法迈出了一大步。与传统的2D细胞培养和动物模型相比,器官芯片系统能够精确控制流体动力学参数和生物力学微环境。本文系统阐述了单器官、多器官和类器官芯片技术在复杂疾病建模、宿主-微生物组相互作用、器官间生理网络、药物动力学定量预测、毒性反应和个性化治疗等方面的应用。此外,将这些技术转化为药物开发和临床实践的核心挑战进行了批判性分析。随着材料工程、生物传感和人工智能的跨学科融合,器官芯片技术正在超越传统临床前研究的局限性。它们作为“患者替代品”的战略价值将加速精准医疗和罕见疾病治疗的突破。
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引用次数: 0
Insights of mammalian hibernator-derived cholangiocyte organoids in improving liver cold preservation. 哺乳动物冬眠源性胆管细胞类器官改善肝脏低温保存的研究进展。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2025-07-01 DOI: 10.1093/procel/pwaf052
Chuman Wu,Changliang Wang,Meifeng Gu,Weiya He,Wenjun Deng,Wenjie Huang,Jiayu Liao,Changhui Li,Weilue Chen,Ruiping Chen,Ji Dong,Meiling Liu
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引用次数: 0
Discovery and structural investigation of Varicella-Zoster virus gE-neutralizing antibodies isolated from a convalescent patient. 水痘-带状疱疹病毒ge中和抗体的发现及结构研究。
IF 21.1 1区 生物学 Q1 CELL BIOLOGY Pub Date : 2025-06-30 DOI: 10.1093/procel/pwaf051
Lulu Wang,Zihan Jia,Xiaohan Ye,Chunxiao Chen,Baofa Sun,Xiangshuai Zhao,Ruiqi Zhang,Ying Li,Wenya Wang,Zixian Sun,Lushuai Zhou,Zhiyu Ni,Nan Zhang,Yu Guo
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引用次数: 0
期刊
Protein & Cell
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