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1.
ACS Omega ; 9(30): 32268-32286, 2024 Jul 30.
Artículo en Inglés | MEDLINE | ID: mdl-39100297

RESUMEN

Skin is the first defense barrier of the human body, which can resist the invasion of external dust, microorganisms and other pollutants, and ensure that the human body maintains the homeostasis of the internal environment. Once the skin is damaged, the health threat to the human body will increase. Wound repair and the human internal environment are a dynamic process. How to effectively accelerate the healing of wounds without affecting the internal environment of the human body and guarantee that the repaired tissue retains its original function as much as possible has become a research hotspot. With the advancement of technology, researchers have combined new technologies to develop and prepare various types of materials for wound healing. This article will introduce the wound repair materials developed and prepared in recent years from three types: nanofibers, composite hydrogels, and other new materials. The paper aims to provide reference for researchers in related fields to develop and prepare multifunctional materials. This may be helpful to design more ideal materials for clinical application, and then achieve better wound healing and regeneration effects.

2.
Small ; 20(23): e2307603, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38213024

RESUMEN

Bacterial cellulose/oxidized bacterial cellulose nanofibrils (BC/oxBCNFs) macro-fibers are developed as a novel scaffold for vascular tissue engineering. Utilizing a low-speed rotary coagulation spinning technique and precise solvent control, macro-fibers with a unique heterogeneous structure with dense surface and porous core are created. Enhanced by a polydopamine (PDA) coating, these macro-fibers offer robust mechanical integrity, high biocompatibility, and excellent cell adhesion. When cultured with endothelial cells (ECs) and smooth muscle cells (SMCs), the macro-fibers support healthy cell proliferation and exhibit a unique spiral SMC alignment, demonstrating their vascular suitability. This innovative strategy opens new avenues for advances in tissue engineering.


Asunto(s)
Celulosa , Nanofibras , Ingeniería de Tejidos , Andamios del Tejido , Ingeniería de Tejidos/métodos , Nanofibras/química , Andamios del Tejido/química , Celulosa/química , Humanos , Miocitos del Músculo Liso/citología , Proliferación Celular/efectos de los fármacos , Adhesión Celular , Células Endoteliales/citología , Células Endoteliales de la Vena Umbilical Humana , Indoles/química , Polímeros
3.
Adv Mater ; 35(7): e2209263, 2023 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-36448877

RESUMEN

The challenge of bioprinting vascularized tissues is structure retention and in situ endothelialization. The issue is addressed by adopting an aqueous-in-aqueous 3D embedded bioprinting strategy, in which the interfacial coacervation of the cyto-mimic aqueous two-phase systems (ATPS) are employed for maintaining the suspending liquid architectures, and serving as filamentous scaffolds for cell attachment and growth. By incorporating endothelial cells in the ink phase of ATPS, tubular lumens enclosed by coacervated complexes of polylysine (PLL) and oxidized bacteria celluloses (oxBC) can be cellularized with a confluent endothelial layer, without any help of adhesive peptides. By applying PLL/oxBC ATPS for embedded bioprinting, free-form 3D vascular networks with in situ endothelialization of interconnected tubular lumens are achieved. This simple approach is a one-step process without any sacrificed templates and post-treatments. The resultant functional vessel networks with arbitrary complexity are suspended in liquid medium and can be conveniently handled, opening new routes for the in vitro production of thick vascularized tissues for pathological research, regeneration therapy and animal-free drug development.


Asunto(s)
Bioimpresión , Andamios del Tejido , Andamios del Tejido/química , Células Endoteliales , Impresión Tridimensional , Ingeniería de Tejidos
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