» Articles » PMID: 24232256

In Situ Tissue Regeneration Through Host Stem Cell Recruitment

Overview
Journal Exp Mol Med
Date 2013 Nov 16
PMID 24232256
Citations 77
Authors
Affiliations
Soon will be listed here.
Abstract

The field of tissue engineering has made steady progress in translating various tissue applications. Although the classical tissue engineering strategy, which involves the use of culture-expanded cells and scaffolds to produce a tissue construct for implantation, has been validated, this approach involves extensive cell expansion steps, requiring a lot of time and laborious effort before implantation. To bypass this ex vivo process, a new approach has been introduced. In situ tissue regeneration utilizes the body's own regenerating capacity by mobilizing host endogenous stem cells or tissue-specific progenitor cells to the site of injury. This approach relies on development of a target-specific biomaterial scaffolding system that can effectively control the host microenvironment and mobilize host stem/progenitor cells to target tissues. An appropriate microenvironment provided by implanted scaffolds would facilitate recruitment of host cells that can be guided to regenerating structural and functional tissues.

Citing Articles

Electrospinning based biomaterials for biomimetic fabrication, bioactive protein delivery and wound regenerative repair.

Dai X, Nie W, Shen H, Machens H, Boker K, Taheri S Regen Biomater. 2025; 12:rbae139.

PMID: 39803356 PMC: 11723536. DOI: 10.1093/rb/rbae139.


Engineered Osteochondral Scaffolds with Bioactive Cartilage Zone for Enhanced Articular Cartilage Regeneration.

Golebiowska A, Intravaia J, Sathe V, Kumbar S, Nukavarapu S Ann Biomed Eng. 2024; 53(3):597-611.

PMID: 39602036 PMC: 11835937. DOI: 10.1007/s10439-024-03655-1.


Carbon Dots Crosslinked Egg White Hydrogel for Tissue Engineering.

Wu J, Lei J, Li M, Zhang A, Li Y, Liang X Adv Sci (Weinh). 2024; 11(43):e2404702.

PMID: 39303206 PMC: 11578375. DOI: 10.1002/advs.202404702.


Bioengineering from the laboratory to clinical translation in oral and maxillofacial reconstruction.

Maria O, Heram A, Tran S Saudi Dent J. 2024; 36(7):955-962.

PMID: 39035556 PMC: 11255950. DOI: 10.1016/j.sdentj.2024.05.004.


Enhancing volumetric muscle loss (VML) recovery in a rat model using super durable hydrogels derived from bacteria.

Niknezhad S, Mehrali M, Khorasgani F, Heidari R, Kadumudi F, Golafshan N Bioact Mater. 2024; 38:540-558.

PMID: 38872731 PMC: 11170101. DOI: 10.1016/j.bioactmat.2024.04.006.


References
1.
Lutolf M, Hubbell J . Synthetic biomaterials as instructive extracellular microenvironments for morphogenesis in tissue engineering. Nat Biotechnol. 2005; 23(1):47-55. DOI: 10.1038/nbt1055. View

2.
Woo B, Jiang G, Jo Y, Deluca P . Preparation and characterization of a composite PLGA and poly(acryloyl hydroxyethyl starch) microsphere system for protein delivery. Pharm Res. 2002; 18(11):1600-6. DOI: 10.1023/a:1013090700443. View

3.
Erggelet C, Endres M, Neumann K, Morawietz L, Ringe J, Haberstroh K . Formation of cartilage repair tissue in articular cartilage defects pretreated with microfracture and covered with cell-free polymer-based implants. J Orthop Res. 2009; 27(10):1353-60. DOI: 10.1002/jor.20879. View

4.
Calvi L, Adams G, Weibrecht K, Weber J, Olson D, Knight M . Osteoblastic cells regulate the haematopoietic stem cell niche. Nature. 2003; 425(6960):841-6. DOI: 10.1038/nature02040. View

5.
Green E, Lee R . Proteins and small molecules for cellular regenerative medicine. Physiol Rev. 2013; 93(1):311-25. PMC: 3781772. DOI: 10.1152/physrev.00005.2012. View