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🏛️ Key Research Academy15 Indexed Works

Sun Yat Sen University

Verified scientific contributions, CAS laboratory outputs, clinical trial papers, and engineering breakthroughs produced by researchers and faculty affiliated with Sun Yat Sen University.

Stem Cell Research & Therapy2026

Autologous bone marrow mesenchymal stem cell mitochondrial transplantation in recurrent assisted reproductive technology failure: a randomized controlled trial

Authors: Xiaoping Liu, Dandan Wang, Lei Jia, Weixi Chen, Rui Huang, Cong Fang, Cijie Du, Liang Yang, Xingguo Liu, Xiaoyan Liang

Background: Mitochondrial dysfunction contributes to poor embryo quality and recurrent assisted reproductive technology (ART) failure. Mitochondrial transplantation (MIT), which involves supplementing oocytes with exogenous mitochondria, has been proposed as a novel strategy to improve ART outcomes. However, both its clinical efficacy and safety remain unclear. Methods: In this single-center trial, 151 patients with a history of ≥2 failed ART cycles provided 1178 metaphase II (MII) oocytes. Sibling oocytes were randomized 1:1 to receive autologous bone marrow mesenchymal stem cells (BMSCs) mitochondria co-injection during intracytoplasmic sperm injection (ICSI) or standard ICSI. The primary outcome was the rate of day-3 good-quality embryos. Results: MIT significantly accelerated early embryonic cleavage at the 3-cell stage and 5-cell stage, but this morphokinetic alteration did not translate into improvements in good-quality embryo rate, clinical pregnancy rate, or live birth rate. Long-term follow-up of 23 live births revealed no adverse effects, with all offspring exhibiting normal growth and development. Exploratory analysis revealed that oocytes yielding ≥70% transferable embryos after MIT harbored an elevated higher burden of medium frequency (0.05–0.5) mtDNA point mutations. Conclusions: While autologous BMSCs-MIT transiently alters early cleavage kinetics, it does not demonstrate a clinical advantage in unselected patients with recurrent ART failure. Nevertheless, its observed safety profile and the identification of mtDNA mutation burden as a potential predictive biomarker provide a foundation for shifting future MIT research from a universal approach toward precision application in molecularly stratified populations.

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Chinese Journal of Tissue Engineering Research2026

Hand tendon suturing: optimization of traditional suture techniques and application of novel repair materials

Authors: Zhou Ningyu, Zheng Yuxiang, Zhang Xiaoyang, Weng Yuxun, Yang Yinrui, Zhou Qijian, Zheng Jinchen, Liu Hongying, Sun Chenchen, Liu Zheng

BACKGROUND: The tendon suturing technique for the hand has been continuously innovated with the development of biomechanics, minimally invasive techniques, and regenerative medicine. Over the past two decades, research has focused on optimizing traditional suturing techniques and the application of new repair materials, improving the effectiveness of tendon repair and the level of functional recovery in the hand. OBJECTIVE: To assess the global research status and development trends of hand tendon repair techniques over the past two decades through bibliometric analysis, identify research hotspots and their evolution. METHODS: Relevant literature was selected from the Web of Science database from 2005 to 2024, and bibliometric methods were employed for analysis. Data were organized using Microsoft Excel and analyzed for publication trends using the R language Bibliometrix package. VOSviewer was used to visualize keyword co-occurrence and collaboration networks, while CiteSpace was utilized to identify research hotspots and their temporal evolution. RESULTS AND CONCLUSION: Over the past two decades, research in the field of tendon suturing has shown a fluctuating growth trend. The United States, China, and Europe are the main contributing countries, with the United States occupying a central position in the global research network. Research on flexor tendon repair mainly focuses on biomechanics and the development of new repair materials, while extensor tendon research emphasizes postoperative functional recovery and complex injury repair. In recent years, biomaterials and regenerative medicine have gradually become research hotspots, promoting the application of precision medicine in tendon repair. In the future, interdisciplinary collaboration and the combination of advanced materials will further optimize hand tendon repair techniques.

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Stem Cell Research & Therapy2026

Autologous bone marrow mesenchymal stem cell mitochondrial transplantation in recurrent assisted reproductive technology failure: a randomized controlled trial

Authors: Xiaoping Liu, Dandan Wang, Lei Jia, Weixi Chen, Rui Huang, Cong Fang, Cijie Du, Liang Yang, Xingguo Liu, Xiaoyan Liang

Background Mitochondrial dysfunction contributes to poor embryo quality and recurrent assisted reproductive technology (ART) failure. Mitochondrial transplantation (MIT), which involves supplementing oocytes with exogenous mitochondria, has been proposed as a novel strategy to improve ART outcomes. However, both its clinical efficacy and safety remain unclear. Methods In this single-center trial, 151 patients with a history of ≥ 2 failed ART cycles provided 1178 metaphase II (MII) oocytes. Sibling oocytes were randomized 1:1 to receive autologous bone marrow mesenchymal stem cells (BMSCs) mitochondria co-injection during intracytoplasmic sperm injection (ICSI) or standard ICSI. The primary outcome was the rate of day-3 good-quality embryos. Results MIT significantly accelerated early embryonic cleavage at the 3-cell stage and 5-cell stage, but this morphokinetic alteration did not translate into improvements in good-quality embryo rate, clinical pregnancy rate, or live birth rate. Long-term follow-up of 23 live births revealed no adverse effects, with all offspring exhibiting normal growth and development. Exploratory analysis revealed that oocytes yielding ≥ 70% transferable embryos after MIT harbored an elevated higher burden of medium frequency (0.05–0.5) mtDNA point mutations. Conclusions While autologous BMSCs-MIT transiently alters early cleavage kinetics, it does not demonstrate a clinical advantage in unselected patients with recurrent ART failure. Nevertheless, its observed safety profile and the identification of mtDNA mutation burden as a potential predictive biomarker provide a foundation for shifting future MIT research from a universal approach toward precision application in molecularly stratified populations.

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Acta Biochimica et Biophysica Sinica2026

Long noncoding RNA LINC02432 inhibits papillary thyroid cancer via promoting ferroptosis

Authors: Yilin Zhang, Chuimian Zeng, Junxin Chen, Weijian Ke, Yi Zhao, Niandong Yi, Xueying Chen, Jinmei Deng, Xianying Zhu, Yanbing Li, Hongyu Guan

Long noncoding RNAs (lncRNAs) are essential in regulating the development and progression of different types of cancer. However, our insights into their impact and mechanisms in papillary thyroid carcinoma (PTC) are still insufficient. In this study, we investigate the effects of the ferroptosis-associated long noncoding RNA LINC02432 on PTC, which recognizes ferroptosis as a critical mechanism in cancer biology and lncRNAs as significant factors in various malignancies. To identify lncRNAs associated with ferroptosis in PTC, we conduct bioinformatics analyses and perform functional assays to evaluate the biological impact of LINC02432 on PTC cells, as well as its relationship with ferroptosis. Mechanistic studies employ methods such as western blot analysis, flow cytometry, and real-time PCR. Our analysis of transcriptome data from TCGA reveals that LINC02432 is the only lncRNA consistently identified by all 10 machine learning methods used, and its expression is significantly downregulated in PTC. Overexpression of LINC02432 in PTC cells inhibits cell proliferation and migration while promoting ferroptosis through inactivation of the NRF2 pathway. LINC02432 knockdown in PTC cells yields the opposite result. These findings highlight the potential of LINC02432 as a tumor suppressor in PTC progression, offering new insights into the mechanisms underlying the development and progression of this malignancy.

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Acta Biochimica et Biophysica Sinica2026

RP11-439C15.4 inhibits the malignant progression of hepatocellular carcinoma via binding to DHX9 and facilitating its degradation

Authors: Xuejiao Li, Zhongying Hu, Yina Sun, Tingting Wang, Xijing Yan, Qiang You, Kunhua Hu, Jia Yao, Xiaofeng Yuan, Rong Li

Long noncoding RNAs (lncRNAs) play crucial roles in the occurrence and progression of hepatocellular carcinoma (HCC), but the functions and molecular mechanisms of large lncRNAs remain unclear. In this study, HCC data from The Cancer Genome Atlas (TCGA) and 116 HCC cases from our clinical center are used to identify a novel lncRNA, RP11-439C15.4, which is significantly downregulated in HCC. This downregulation is associated with poor prognosis in HCC patients. A series of in vitro and in vivo experiments demonstrate that RP11-439C15.4 significantly inhibits the proliferation, invasion, migration and sorafenib resistance of HCC cells. Further mechanistic investigations reveal that RP11-439C15.4 interacts with DExH-Box Helicase 9 (DHX9) to increase its ubiquitination and accelerate the degradation of DHX9, ultimately suppressing HCC progression. Modulation of DHX9 significantly reverses the effects of RP11-439C15.4 in HCC. In conclusion, this study identifies RP11-439C15.4 as a tumor suppressor and elucidates the regulatory mechanism of the RP11-439C15.4/DHX9 axis in HCC, providing valuable insights into the mechanisms of HCC progression and potential therapeutic targets.

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Acta Biochimica et Biophysica Sinica2026

Ly96-mediated activation of TGF-β1/Smad2/3 signaling in hepatocellular carcinoma and its potential for nanoparticle-based therapy

Authors: Yixin Zhang, Sui Zheng, Xiaoqing Su, Wanrong Luo, Haifeng Tang, Shiyu Xiong, Min Tan, Baoming Luo

Hepatocellular carcinoma (HCC) continues to pose a chief threat to the global healthcare landscape and is characterized by scarce therapeutic options and poor clinical outcomes, especially in advanced-stage disease. Although lymphocyte antigen 96 (LY96) is associated with immunogenic cell death, its specific role in HCC progression and therapeutic potential remains unclear. To identify prospective therapeutic targets in HCC, by combining the cancer-immunity cycle score with WGCNA and systems biology methods, we identify pivotal molecular interactions. By integrating the cancer-immunity cycle score with WGCNA and systems-level approaches, we systematically identify potential therapeutic targets in HCC. We evaluate LY96 expression at the transcriptomic and proteomic levels in HCC tissues and explore its prognostic relevance by drawing upon information from The Cancer Genome Atlas (TCGA) repository. The functional role of LY96 is delineated through a panel of cellular assays conducted in vitro, complemented by in vivo tumorigenesis models. To identify the downstream signaling cascades associated with LY96, gene set enrichment analysis (GSEA) is performed to elucidate the implicated pathways, which are then confirmed via experimental validation. Furthermore, we employ a lipid-polymer hybrid nanoparticle (NP) platform to facilitate the systemic delivery of an LY96 inhibitor and demonstrate its potential as a newly proposed intervention strategy for HCC. Clinically, marked LY96 overexpression occurs in HCC samples, where elevated LY96 expression is strongly associated with reduced overall survival (OS) among liver cancer patients. LY96 facilitates the progression of HCC via complementary in vitro and in vivo approaches. Mechanistically, LY96 induces the activation of the TGF-β1/Smad2/3 signaling axis in HCC. For therapeutic applications, we develop a liposome-based nanoparticle system that delivers the LY96 inhibitor L6H21 to tumor cells and effectively suppresses HCC progression through a combination of in vivo and in vitro studies. Taken together, the current observations identify LY96 as a promising diagnostic indicator and a viable intervention for therapeutic modulation to improve HCC treatment.

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Stem Cell Research & Therapy2025

The influence of femtosecond laser intrastromal lenticules on the characteristics and maturity in tissue-engineered stem cell-derived retinal pigment epithelium sheets

Authors: Gu Jianing, Su Zhanyu, Wang Yini, Chen Yuexi, Cui Zekai, Li Shengguo, Ding Chengcheng, Sheng Wang, Li Kangjun, Tang Shibo, Chen Jiansu

Background: Recent advances in clinical trials have involved the transplantation of induced retinal pigment epithelium (iRPE) cells from stem cells in creating a functional monolayer that mimics the characteristics of natural adult RPE cells. One method of achieving this goal is through the use of tissue engineering. In this research, decellularised femtosecond laser intrastromal lenticules (dfLEN) were employed as a scaffold for cultivating a bioengineered iRPE monolayer sheet. Methods: iRPE cells were obtained by differentiating induced pluripotent stem cells (iPSC). These cells were then seeded on decellularized FLI-lenticules (dfLEN). The functionality, characterization, and oxidative stress of iRPE cultured on dfLEN were compared with those cultured on plates (TCP) using various assays such as immunofluorescence (IF), Edu, CCK8, ELISA, DFCH-DA, and JC-1. Additionally, RNA-seq assays and electron microscope (SEM and TEM) were used to test the iRPE characteristic on engineered dfLEN. Finally, we evaluated the biocompatibility of iRPE-dfLEN sheets by transplanting them into the subretinal space of New Zealand white rabbits. Results: The iRPE cells cultured on dfLEN exhibited morphology and physiology similar to that of native RPE tissue. The dfLEN not only increased the resistance capacity of iRPE cells but also improved their functional properties compared to TCP. In addition, our results indicate that dfLEN enhances the expression of genes associated with cilium assembly, resulting in notable improvements in ciliogenesis in iRPE cells. Finally, the dfLEN-iRPE sheets demonstrated favorable biocompatibility and some viability when transplanted into the subretinal space of rabbits for a period of 14 days.

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Stem Cell Research & Therapy2025

From inflammation to healing: the crucial role of GPR91 activation and SDH inhibition in chronic diabetic wound recovery

Authors: Hengdeng Liu, Shixin Zhao, Hanwen Wang, Xuefeng He, Suyue Gao, Minmin Su, Miao Zhen, Shuying Chen, Lei Chen, Julin Xie

Background Diabetic foot ulcers (DFU) typically exhibit impaired healing due to dysregulated re-epithelialization and excessive inflammation. Succinate, a key metabolic intermediate, is now understood to regulate inflammation through G Protein-Coupled Receptor 91 (GPR91) and succinate dehydrogenase (SDH), although its role in DFU remains unclear. Methods Co-cultures of M2 macrophages and epithelial cells, along with clinical samples, were used to analyze the expression of GPR91 and SDH. Functional assays were performed using high glucose (HG)-treated M2 macrophages (HG-M2) and an in vivo model. Cytokine and growth factor levels in cell supernatant were measured, and molecular mechanisms were explored via qRT-PCR, flow cytometry, and western blot analysis. Results Elevated glucose concentrations increased succinate levels and disrupted M2 macrophage–epidermal stem cells (EpSCs) interactions. GPR91 knockdown worsened HG-M2 dysfunction, while GPR91 overexpression (OE-GPR91) enhanced anti-inflammatory responses and reduced succinate. OE-GPR91-conditioned medium preserved EpSCs stemness and promoted migration mediated by hepatocyte growth factor (HGF). SDH inhibition (via Dimethyl malonate, DMM) boosted M2 macrophage activity by reducing reactive oxygen species (ROS) and upregulating Gpr91 expression. Mechanistically, GPR91 activated the pAkt/pGSK3β/β-catenin pathway, while DMM enhanced M2 macrophage function via the PI3K-Akt/pERK1/2 pathway. Conclusions GPR91 upregulation and SDH inhibition improve HG-M2 macrophage function, reduce inflammation, and enhance HGF-mediated EpSCs repair. Targeting both pathways may represent a promising approach to promote DFU healing.

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Stem Cell Research & Therapy2025

CXCR5-engineered mesenchymal stromal cells home to spleen and mitigate post-sepsis syndrome by preventing secondary infection

Authors: Jiahao Shi, Lu Zhu, Xin Sui, Xiaomeng Yi, Xiaoyong Chen, Zhishan Li, Minjie Liu, Yingying Bao, Dongyan Zhu, Yuantao Li, Heshe Li, Ying Wang, Lin Nie, Rouchen Lin, Yunli Tong, Jing Huang, Jianqi Feng, Rui Fang, Tao Wang, Andy Peng Xiang, Xiaoran Zhang

Background Sepsis survivors frequently develop compromised humoral immunity, manifesting as prolonged immunosuppression that increases susceptibility to secondary infections with high associated mortality. While mesenchymal stromal cells (MSCs) have demonstrated efficacy in mitigating initial inflammatory responses and improving early survival rates in murine cecal ligation and puncture (CLP) models, they show limited effectiveness against subsequent secondary infections. Given that lymphopenia represents a primary driver of this infection vulnerability, we sought to investigate whether spleen-targeted MSC therapy could prevent lymphocyte depletion and enhance protection against secondary infections. Methods In this study, we developed CXCR5-overexpressing MSCs (MSCCXCR5) to enhance their targeted migration toward splenic CXCL13. Using a CLP mouse model followed by secondary Staphylococcus aureus (S. aureus) infection, we systematically evaluated the therapeutic potential of MSCCXCR5 in combating post-sepsis immunosuppression. Results MSCCXCR5 demonstrated enhanced splenic migration, specifically homing to CXCL13-rich B-cell zones, and conferred significant protection against both S. aureus secondary infection and sepsis-induced lymphopenia. Mechanistic investigations revealed that MSCCXCR5 treatment preserved follicular and germinal center B-cell populations, maintaining splenic architecture and potentiating antigen-specific B-cell responses to CLP challenge. These effects collectively contributed to markedly improved survival outcomes in CLP mice following secondary infection. Conclusion Our findings demonstrate that MSCCXCR5 confers dual-phase protection in sepsis, improving survival during both the initial hyperinflammatory phase and subsequent immunosuppressive period. This comprehensive

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Stem Cell Research & Therapy2025

Single-cell RNA sequencing identifies PD-L1+ mesenchymal stem cells with enhanced immunomodulatory capacity and alleviated the degree of ectopic new bone formation in ankylosing spondylitis

Authors: Xiqing Luo, Liuzhong Zhou, Xianghui Wen, Jinwei Li, Dong Liu, Budian Liu, Shenghui Wen, Jieruo Gu

Background This study systematically evaluated the immunomodulatory function of PD-L1-positive mesenchymal stem cells (PD-L1(+) MSCs) using single-cell RNA sequencing (scRNA-seq) and investigated their roles in suppressing inflammation and regulating pathological bone formation in curdlan-induced SKG ankylosing spondylitis (AS) mouse models. Methods scRNA-seq identified MSC subpopulations with high immunomodulatory capacity and key biomarker PD-L1 for subpopulation classification. In vitro co-culture experiments were conducted to evaluate the effects of MSC subpopulations on T-cell proliferation and TNF-α levels. In vivo experiments were performed in forty-eight SKG mouse models to analyze the effects of MSC subpopulations on joint inflammation scores, T-cell subset proportions, inflammatory cytokines, histopathology, and pathological bone formation. Results scRNA-seq revealed significant heterogeneity in MSCs under inflammatory stimulation, with the immunomodulatory subpopulation exhibiting high expression of PD-L1 and IDO. In vitro experiments demonstrated that PD-L1(+) MSCs significantly suppressed T-cell proliferation and reduced TNF-α levels. Joint redness and swelling scores showed that the PD-L1(+) MSC group exhibited the most significant improvement in arthritis, while the IL-17Ai, PD-L1(-) MSC, and MSC groups also effectively reduced inflammation, with significantly lower scores than the model control(MC) group. Histological analysis revealed severe inflammatory cell infiltration in the MC group, while the IL-17Ai, PD-L1(+) MSC, and MSC groups exhibited reduced infiltration. Immunohistochemical analysis further confirmed these findings, with PD-L1(+) MSCs exhibiting a significant reduction in TNF-α and IL-17A-positive cells (P < 0.0001 and P < 0.01, respectively). PD-L1(+) MSCs regulated immune responses by reducing Th17 cell proportions, increasing Th2 and Treg cell proportions, and significantly lowering pro-inflammatory cytokines IFN-γ, IL-17A, and TNF-α. MicroCT analysis indicated that the PD-L1(+) MSC, MSC, and IL-17Ai group effectively suppressed pathological bone formation.

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Acta Biochimica et Biophysica Sinica2025

The dual role of RNA-binding proteins: promotion of tumorigenesis, drug resistance, and emerging therapeutic targets

Authors: Zemei Xu, Yukun Cui

Cancer is a complex and multifaceted disease characterized by a multitude of molecular factors. RNA-binding proteins (RBPs) have emerged as pivotal regulators of tumor development, progression, and chemoresistance through their interactions with target transcripts. These interactions regulate a multitude of processes, including alternative splicing, cleavage and polyadenylation, RNA localization, translation, N6-methyladenosine (m6A) RNA modification, and DNA double-strand break repair. The RBP family comprises over 2000 proteins and plays a critical role in oncogene expression, invasion, metastasis, and inhibition of apoptosis. However, the mechanisms by which RBPs selectively recognize RNAs remain an active area of research. In this review, we examine recent advancements in understanding RNA-binding domains and the RNA processes regulated by RBPs in tumorigenesis, summarize and highlight the roles of RNA-binding domains in cancers and the molecular mechanisms of RBPs in chemotherapy resistance, discuss the potential of targeting RBPs for cancer therapy and review RBPs that are dysregulated in cancers. Additionally, we highlight recently developed tools for predicting RBP-RNA binding activities to provide valuable support for ongoing research efforts.

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Acta Biochimica et Biophysica Sinica2025

G6PC3 is involved in spermatogenesis by maintaining meiotic sex chromosome inactivation

Authors: Yuming Cao, Shengnan Wang, Liyang Li, Wenwen Li, Yan Liang, Fei Ao, Zexiao Wei, Li Wang

Meiosis, a process unique to germ cells, involves formation and repair of double-stranded nicks in DNA, pairing and segregation of homologous chromosomes, which ultimately achieves recombination of homologous chromosomes. Genetic abnormalities resulted from defects in meiosis are leading causes of infertility in humans. Meiotic sex chromosome inactivation (MSCI) plays a crucial role in the development of male germ cells in mammals, yet its underlying mechanisms remain poorly understood. In this study, we illustrate the predominant presence of a protein known as glucose 6 phosphatase catalyzed 3 (G6PC3) in pachytene spermatocytes, with a high concentration in the sex body (XY body), suggesting its significant involvement in male germ cell development. By employing CRISPR-Cas9 technology, we generate mice deficient in the G6pc3 gene, resulting in complete meiotic arrest at the pachytene stage in spermatocytes and are completely sterile. Additionally, we observe abnormal XY body formation and impaired MSCI in G6pc3-knockout spermatocytes. These findings underscore G6pc3 as a new essential regulator that is essential for meiotic progression. G6PC3 is involved in spermatocyte during male spermatogenesis development by the maintenance of meiosis chromosome silencing.

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Stem Cell Research & Therapy2024

FDFT1 maintains glioblastoma stem cells through activation of the Akt pathway

Authors: Hui Mo, Jiajia Shao, Zhun Li, Peiting Zeng, Xinke Yin, Yongsheng Huang, Peng Wang, Jianwei Liao

Background Cancer stem cells (CSCs) have unique metabolic characteristics and are hypothesized to contribute significantly to the recurrence and drug resistance of glioblastoma multiforme (GBM). However, the reliance on mitochondrial metabolism and the underlying mechanism of glioblastoma stem cells (GSCs) remains to be elucidated. Methods To quantify differential mitochondrial protein expression between GSCs and differentiated cells, a mass spectrum screen was applied by the Stable Isotope Labeling with Amino Acids in Cell Culture (SILAC) technique. Functional experiments including CCK8, neurosphere formation, flow cytometry, transwell, and wound healing assays were conducted to evaluate GBM cell malignant phenotype. The potential molecular mechanism of FDFT1 was screened by RNA-seq analyses. The candidate target genes were validated through RT-qPCR and western blot analyses. Results As a top candidate, FDFT1 protein expression in GSCs was elevated relative to their differentiated counterparts. Functionally, the knockdown of FDFT1 suppressed the GBM cell proliferation and migration, while simultaneously enhancing sensitivity to temozolomide. Treatment with both the FDFT1 inhibitor (YM-53601) and simvastatin (an HMG-CoA reductase inhibitor) induced apoptosis in GSCs. Mechanistically, FDFT1 was transcriptionally regulated by SREBP2 but not SREBP1. Furthermore, FDFT1 activates the AKT pathway to regulate tumor metabolism and maintain the stemness of tumor cells. Conclusions GSCs exhibit a dependency on FDFT1-mediated mevalonate metabolism. Inhibition of FDFT1 could represent a potent strategy to eliminate GSCs.

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Acta Biochimica et Biophysica Sinica2024

CARF regulates the alternative splicing and piwi/piRNA complexes during mouse spermatogenesis through PABPC1

Authors: Yuming Cao, Shengnan Wang, Jie Liu, Jinfeng Xu, Yan Liang, Fei Ao, Zexiao Wei, Li Wang

ADP-ribosylation factor collaborator (CARF), which is also known as CDKN2AIP, was first recognized as an ADP-ribosylation factor-interacting protein that participates in the activation of the ARF-p53-p21 (WAF1) signaling pathway under different conditions, such as oxidative and oncogenic stresses. The activation of this pathway often leads to cell growth arrest and apoptosis as well as senescence. Previous studies revealed that CARF, an RNA-binding protein, is critical for maintaining stem cell pluripotency and somatic differentiation. Nevertheless, its involvement in spermatogenesis has not been well examined. In this study, we show that male mice deficient in Carf expression present impaired spermatogenesis and fertility. IP-MS and RNA-seq analyses reveal that CARF/Carf interacts with multiple key splicing factors, such as PABPC1, and directly targets 356 different types of mRNAs in spermatocytes. Carf-associated mRNAs display aberrant splicing patterns when Carf expression is deficient. In addition, our results demonstrate that PIWIL1 expression and localization are altered in the Carf-/- mouse model through the downregulation of PABPC1, which further affects the ratio of pachytene-piRNA. Our study suggests that CARF is critical for regulating alternative splicing in mammalian spermatogenesis and determining infertility in male mice.

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Acta Biochimica et Biophysica Sinica2024

UBE2C promotes myoblast differentiation and skeletal muscle regeneration through the Akt signaling pathway

Authors: Renqiang Yuan, Xiaorong Luo, Ziyun Liang, Shufang Cai, Yunxiang Zhao, Qi Zhu, Enru Li, Xiaohong Liu, Delin Mo, Yaosheng Chen

Ubiquitin-conjugation enzyme E2C (UBE2C) is a crucial component of the ubiquitin-proteasome system that is involved in numerous cancers. In this study, we find that UBE2C expression is significantly increased in mouse embryos, a critical stage during skeletal muscle development. We further investigate the function of UBE2C in myogenesis. Knockdown of UBE2C inhibits C2C12 cell differentiation and decreases the expressions of MyoG and MyHC, while overexpression of UBE2C promotes C2C12 cell differentiation. Additionally, knockdown of UBE2C, specifically in the tibialis anterior muscle (TA), severely impedes muscle regeneration in vivo. Mechanistically, we show that UBE2C knockdown reduces the level of phosphorylated protein kinase B (p-Akt) and promotes the degradation of Akt. These findings suggest that UBE2C plays a critical role in myoblast differentiation and muscle regeneration and that UBE2C regulates myogenesis through the Akt signaling pathway.

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