弥合心力衰竭研究的翻译差距:使用人类ipsc衍生的心肌细胞加速治疗见解。

Q2 Medicine Methodist DeBakey cardiovascular journal Pub Date : 2023-11-16 eCollection Date: 2023-01-01 DOI:10.14797/mdcvj.1295
Leslye Venegas-Zamora, Matthew Fiedler, William Perez, Francisco Altamirano
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引用次数: 0

摘要

心力衰竭(HF)仍然是世界范围内死亡的主要原因,其患病率和负担都在增加。尽管进行了广泛的研究,但治疗心衰的方法仍然难以捉摸。传统上,心衰发病机制和治疗方法的研究主要依赖于动物实验。然而,这些模型在概括人类HF的全谱方面存在局限性,这给临床翻译带来了挑战。为了解决这一翻译缺口,利用人类细胞,特别是人类诱导多能干细胞(hiPSC-CMs)衍生的心肌细胞的研究提供了一个有希望的解决方案。这些细胞促进了人类驱动心肌细胞功能障碍的遗传和分子机制的研究,并为针对个体患者的研究铺平了道路。此外,工程心脏组织结合hiPSC-CMs、其他细胞类型和基于支架的方法来改善心肌细胞成熟。它们的三维结构与机械、化学和电子线索相辅相成,提供了一个与生理更相关的环境。本文探讨了用于研究心衰发病机制的传统方法和创新方法的优点和局限性,主要关注缺血性心衰,因为其相对容易建模和临床相关性。我们强调合作方法的重要性,该方法将在动物和基于hipsc - cms的模型中获得的见解与严格的临床研究相结合,以剖析人类心衰的机制基础。这种方法可以提高我们对这种疾病的了解,并带来更有效的治疗方法。
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Bridging the Translational Gap in Heart Failure Research: Using Human iPSC-derived Cardiomyocytes to Accelerate Therapeutic Insights.

Heart failure (HF) remains a leading cause of death worldwide, with increasing prevalence and burden. Despite extensive research, a cure for HF remains elusive. Traditionally, the study of HF's pathogenesis and therapies has relied heavily on animal experimentation. However, these models have limitations in recapitulating the full spectrum of human HF, resulting in challenges for clinical translation. To address this translational gap, research employing human cells, especially cardiomyocytes derived from human-induced pluripotent stem cells (hiPSC-CMs), offers a promising solution. These cells facilitate the study of human genetic and molecular mechanisms driving cardiomyocyte dysfunction and pave the way for research tailored to individual patients. Further, engineered heart tissues combine hiPSC-CMs, other cell types, and scaffold-based approaches to improve cardiomyocyte maturation. Their tridimensional architecture, complemented with mechanical, chemical, and electrical cues, offers a more physiologically relevant environment. This review explores the advantages and limitations of conventional and innovative methods used to study HF pathogenesis, with a primary focus on ischemic HF due to its relative ease of modeling and clinical relevance. We emphasize the importance of a collaborative approach that integrates insights obtained in animal and hiPSC-CMs-based models, along with rigorous clinical research, to dissect the mechanistic underpinnings of human HF. Such an approach could improve our understanding of this disease and lead to more effective treatments.

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65
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