多组学评估临床级人脐带间充质干细胞在衰老加速小鼠模型中协同改善衰老相关疾病的作用。

IF 7.1 2区 医学 Q1 CELL & TISSUE ENGINEERING Stem Cell Research & Therapy Pub Date : 2024-10-29 DOI:10.1186/s13287-024-03986-9
Jiabian Lian, Lu Xia, Guohao Wang, Weijing Wu, Ping Yi, Meilin Li, Xufeng Su, Yushuo Chen, Xun Li, Fei Dou, Zhanxiang Wang
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引用次数: 0

摘要

背景:与年龄有关的疾病,尤其是神经系统和心血管系统疾病的发病率日益成为全球关注的健康问题。间充质干细胞(MSC)疗法,尤其是利用人体脐带间充质干细胞(HUCMSCs),已显示出缓解这些疾病的前景。本研究调查了HUCMSCs对衰老加速小鼠模型(SAMP8)中衰老相关疾病的影响,重点是DNA损伤、肠道微生物群改变和代谢变化:方法:通过腹腔注射临床级 HUCMSCs 治疗 SAMP8 小鼠。方法:通过腹腔注射临床级 HUCMSCs 治疗 SAMP8 小鼠,并进行行为和身体评估,以评价认知和运动功能。采用核苷酸基因组水平单链断裂图谱(SSiNGLe)方法评估整个基因组的DNA单链断裂(SSB),特别关注外显子区域和转录起始位点。利用 16S rRNA 测序分析了肠道微生物群的组成,并进行了羧基代谢组学分析,以确定循环代谢物的变化:结果:HUCMSC 治疗明显改善了 SAMP8 小鼠的运动协调性并减轻了焦虑。SSiNGLe分析表明,间充质干细胞治疗小鼠的DNA SSB明显减少,尤其是在关键基因组区域,这表明HUCMSCs可减轻与年龄相关的DNA损伤。DNA断裂组的功能注释表明,DNA损伤的减少与代谢途径的改变之间存在潜在联系。此外,还观察到肠道微生物群发生了有益的改变,包括短链脂肪酸(SCFA)产生菌的增加,这与代谢状况的改善有关:结论:在 SAMP8 小鼠体内施用 HUCMSCs 不仅能减少 DNA 损伤,还能诱导肠道微生物群和新陈代谢发生有利变化。观察到的 DNA 断裂模式的改变以及微生物群和新陈代谢特征的特定变化表明,这些可作为评估 HUCMSCs 治疗老年相关疾病疗效的潜在生物标志物。这为利用这些生物标志物开发新的治疗策略,提高基于 HUCMSC 治疗衰老相关疾病的效果,提供了一条大有可为的途径。
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Multi-omics evaluation of clinical-grade human umbilical cord-derived mesenchymal stem cells in synergistic improvement of aging related disorders in a senescence-accelerated mouse model.

Background: The prevalence of age-related disorders, particularly in neurological and cardiovascular systems, is an increasing global health concern. Mesenchymal stem cell (MSC) therapy, particularly using human umbilical cord-derived MSCs (HUCMSCs), has shown promise in mitigating these disorders. This study investigates the effects of HUCMSCs on aging-related conditions in a senescence-accelerated mouse model (SAMP8), with a focus on DNA damage, gut microbiota alterations, and metabolic changes.

Methods: SAMP8 mice were treated with clinical-grade HUCMSCs via intraperitoneal injections. Behavioral and physical assessments were conducted to evaluate cognitive and motor functions. The Single-Strand Break Mapping at Nucleotide Genome Level (SSiNGLe) method was employed to assess DNA single-strand breaks (SSBs) across the genome, with particular attention to exonic regions and transcription start sites. Gut microbiota composition was analyzed using 16S rRNA sequencing, and carboxyl metabolomic profiling was performed to identify changes in circulating metabolites.

Results: HUCMSC treatment significantly improved motor coordination and reduced anxiety in SAMP8 mice. SSiNGLe analysis revealed a notable reduction in DNA SSBs in MSC-treated mice, especially in critical genomic regions, suggesting that HUCMSCs may mitigate age-related DNA damage. The functional annotation of the DNA breaktome indicated a potential link between reduced DNA damage and altered metabolic pathways. Additionally, beneficial alterations in gut microbiota were observed, including an increase in short-chain fatty acid (SCFA)-producing bacteria, which correlated with improved metabolic profiles.

Conclusion: The administration of HUCMSCs in SAMP8 mice not only reduces DNA damage but also induces favorable changes in gut microbiota and metabolism. The observed alterations in DNA break patterns, along with specific changes in microbiota and metabolic profiles, suggest that these could serve as potential biomarkers for evaluating the efficacy of HUCMSCs in treating age-related disorders. This highlights a promising avenue for the development of new therapeutic strategies that leverage these biomarkers, to enhance the effectiveness of HUCMSC-based treatments for aging-associated diseases.

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来源期刊
Stem Cell Research & Therapy
Stem Cell Research & Therapy CELL BIOLOGY-MEDICINE, RESEARCH & EXPERIMENTAL
CiteScore
13.20
自引率
8.00%
发文量
525
审稿时长
1 months
期刊介绍: Stem Cell Research & Therapy serves as a leading platform for translational research in stem cell therapies. This international, peer-reviewed journal publishes high-quality open-access research articles, with a focus on basic, translational, and clinical research in stem cell therapeutics and regenerative therapies. Coverage includes animal models and clinical trials. Additionally, the journal offers reviews, viewpoints, commentaries, and reports.
期刊最新文献
Epithelial differentiation of gingival mesenchymal stem cells enhances re-epithelialization for full-thickness cutaneous wound healing. Highly efficient generation of mature megakaryocytes and functional platelets from human embryonic stem cells. Impact of mesenchymal stem cell size and adhesion modulation on in vivo distribution: insights from quantitative PET imaging. Mechanism and prospects of mitochondrial transplantation for spinal cord injury treatment. Correction: Multi-omics evaluation of clinical-grade human umbilical cord-derived mesenchymal stem cells in synergistic improvement of aging related disorders in a senescence-accelerated mouse model.
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