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April 27, 2026Molecular and Cellular Endocrinology0 citationsOpen Access

3D bioprinted connections in Liver‒Pancreas crosstalk: Lessons learned and future directions

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MMMarjorie Dardis MurucciSOSunday Amos OnikanniAGAlana da Cunha Goldstein

Key Points

  • This review focuses on the advancements in 3D bioprinting to better understand liver-pancreas interactions involved in metabolic processes.
  • Review of recent literature on 3D bioprinting technologies enhancing multiorgan interactions.
  • Analysis of biomaterials, engineered microenvironments, and their implications on metabolic signaling.
  • Evaluation of microfluidic systems for nutrient delivery and real-time metabolic monitoring.
  • 3D bioprinting creates microtissues that mimic liver-pancreas crosstalk, enhancing insulin and glucose regulation.
  • Dynamic perfusion systems improve nutrient flow and metabolic responses in engineered constructs.
  • Future directions emphasize the need for vascularization and functional tissue complexity to better model metabolic disorders.

Abstract

The complexity of metabolic crosstalk between the liver and pancreas, which controls glucose and homeostasis levels, has been intriguing for models based on conventional in vitro systems. However, the 3D bioprinting path has created an incredible platform of multicellular and spatially concerted microtissues that mimic the interaction of the pancreas. This discovery contributes important insights into metabolic organization, regenerative strategies, and disease mechanisms. Therefore, our review delves into recent advancements in 3D bioprinted crosstalk between liver and pancreas constructs, with focus on biomaterial scaffolds, engineered microenvironments, and how dynamic perfusion systems imitate signaling between hepatocytes, stromal components, and pancreatic β-cells. The relevance of nutrient flow, coculture geometry, and bioink composition to improve insulin responsiveness, lipid metabolic processes, and glucose uptake has taken the focal point, while the integration of microfluidic bioreactors and biosensing scaffolds provides real-time metabolic monitoring and testing of drugs. Persistent threats still exist in preserving tissue viability, functional connectivity, and vascularization. Future research could delve into creation of vascularized multiorgan chips and evaluate therapies, stem cell-based cell lines, and AI-backed bioprinting for customized disease modeling. Integrating bioengineering and endocrine biology in 3D bioprinting of the liver‒pancreas system could improve scientific knowledge of interorgan crosstalk in metabolic disorders. Figure 1 : A bioengineered 3D hepatic-pancreatic construct facilitates the investigation of interorgan communication through the integration of advanced bioprinting techniques and endocrine biological principles. This platform quantifies hormonal fluctuations, metabolic interdependence, and feedback mechanisms, facilitating a deeper understanding of aberrant glucose-lipid balance and enhancing the predictive accuracy of metabolic disease models and treatment outcomes( https://BioRender.com ) . • 3D bioprinting organizes hepatocytes and pancreatic cells spatially to model complex metabolic signaling. • The development of advanced, tissue-specific bioinks has enhanced cellular maturation and functional responsiveness. • Microfluidics and coaxial printing enhance nutrient delivery, bridging artificial constructs with physiology. • Reliable bioprinted tissues need mature metabolic function and systemic complexity beyond basic architecture.

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Cite This Study

Murucci et al. (2026) studied this question.

synapsesocial.com/papers/69eefcf4fede9185760d3b03https://doi.org/10.1016/j.mce.2026.112806
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