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May 8, 2026Cell Communication and Signaling0 citationsOpen Access

In vitro modeling of renal injury-induced cardiac effects using human iPSC-derived organoids

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BGBeatrice GabbinJGJames GallantFLFangchen Liu

Key Points

  • This research aims to investigate the effects of kidney injury on cardiac function using an organoid model.
  • Developed a co-culture system with hiPSC-derived kidney organoids (kOs) and cardiac microtissues (cMTs).
  • Exposed kOs to nephrotoxic compounds for 72 hours prior to co-culture with cMTs for an additional 72 hours.
  • kOs exhibited significant glomerular and tubular damage alongside reduced cell viability and altered gene expression.
  • Co-cultured cMTs displayed impaired contractility and endothelial cell loss after exposure to injured kOs.

Abstract

Abstract The bidirectional communication between the heart and kidney is essential for physiological homeostasis, with injury in one organ often impairing the other. Although cardiorenal crosstalk is clinically relevant in conditions such as cardiorenal syndrome (CRS), the underlying molecular and cellular mechanisms remain poorly understood, and in vitro models are lacking. Here, we developed a co-culture system using human induced pluripotent stem cell (hiPSC)-derived kidney organoids (kOs) and cardiac microtissues (cMTs) to model the cardiorenal axis. kOs exposed to nephrotoxic compounds for 72 h displayed glomerular and tubular damage, reduced cell viability, and altered gene expression. When subsequently co-cultured with cMTs for 72 h, injured kOs induced secondary cardiac dysfunction characterized by reduced cell viability, impaired contractility, and endothelial cell loss. These findings demonstrate that kidney injury can elicit detrimental effects on cardiac tissues in vitro. This organoid-based platform offers a valuable tool for studying cardiorenal interactions and underlines the potential of multi-organ models for investigating mechanisms of interdependent organ dysfunction.

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Cite This Study

Gabbin et al. (2026) studied this question.

synapsesocial.com/papers/69fd7fb8bfa21ec5bbf0849ahttps://doi.org/10.1186/s12964-026-02902-3
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