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Adipose Tissue Engineering Biomaterials: Smart Scaffolds, Vascularization, and Clinical Frontiers.

Xin-Yi Zhao1, Peng-Cheng Li1, Yong-Mei Chen1

  • 1College of Bioresources Chemical and Materials Engineering, National Demonstration Center for Experimental Light Chemistry Engineering Education, Shaanxi University of Science and Technology, Xi'an 710021, China.

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Summary

Adipose tissue engineering (ATE) advances functional artificial fat tissue using scaffolds, cells, and growth factors. Overcoming challenges in standardization and immunogenicity is key for clinical translation and applications like tissue repair.

Keywords:
adipogenic differentiationadipose tissue engineeringangiogenesisgrowth factorsscaffold materialsseed cells

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Area of Science:

  • Biomaterials Science
  • Regenerative Medicine
  • Tissue Engineering

Background:

  • Adipose tissue engineering (ATE) addresses adipose tissue deficiency and metabolic disorders.
  • It integrates materials science, cell biology, and engineering to create functional artificial adipose tissue.
  • Current research focuses on improving adipose tissue regeneration and its clinical applications.

Purpose of the Study:

  • To systematically review advances, limitations, and translational potential of adipose tissue engineering.
  • To analyze the fundamental elements: scaffold materials, seed cells, and growth factors.
  • To discuss applications, challenges, and future perspectives for ATE.

Main Methods:

  • Review of scaffold materials (hydrogels, 3D-printed, etc.), seed cells (stem cells), and growth factors.
  • Analysis of factors influencing adipogenic differentiation and vascularization.
  • Evaluation of in vitro and in vivo ATE models, including large animal studies.

Main Results:

  • Key elements like scaffolds, cells, and growth factors play synergistic roles in adipose tissue regeneration.
  • Adipogenic differentiation and vascularization are critical for functional ATE constructs.
  • ATE shows potential in soft tissue repair, drug screening, disease modeling, and cultured meat.

Conclusions:

  • ATE holds significant promise for clinical translation and industrial applications.
  • Standardization of adipose-derived stem cells, immunogenicity, and regulatory hurdles are major challenges.
  • Future research should focus on overcoming these barriers to advance ATE.