Literature DB >> 35650332

Enhancing the function of PLGA-collagen scaffold by incorporating TGF-β1-loaded PLGA-PEG-PLGA nanoparticles for cartilage tissue engineering using human dental pulp stem cells.

Parisa Ghandforoushan1,2, Jalal Hanaee2,3, Zahra Aghazadeh4, Mohammad Samiei5, Amir Mohammad Navali6, Ali Khatibi7, Soodabeh Davaran8,9,10.   

Abstract

Since cartilage has a limited capacity for self-regeneration, treating cartilage degenerative disorders is a long-standing difficulty in orthopedic medicine. Researchers have scrutinized cartilage tissue regeneration to handle the deficiency of cartilage restoration capacity. This investigation proposed to compose an innovative nanocomposite biomaterial that enhances growth factor delivery to the injured cartilage site. Here, we describe the design and development of the biocompatible poly(lactide-co-glycolide) acid-collagen/poly(lactide-co-glycolide)-poly(ethylene glycol)-poly(lactide-co-glycolide) (PLGA-collagen/PLGA-PEG-PLGA) nanocomposite hydrogel containing transforming growth factor-β1 (TGF-β1). PLGA-PEG-PLGA nanoparticles were employed as a delivery system embedding TGF-β1 as an articular cartilage repair therapeutic agent. This study evaluates various physicochemical aspects of fabricated scaffolds by 1HNMR, FT-IR, SEM, BET, and DLS methods. The physicochemical features of the developed scaffolds, including porosity, density, degradation, swelling ratio, mechanical properties, morphologies, BET, ELISA, and cytotoxicity were assessed. The cell viability was investigated with the MTT test. Chondrogenic differentiation was assessed via Alcian blue staining and RT-PCR. In real-time PCR testing, the expression of Sox-9, collagen type II, and aggrecan genes was monitored. According to the results, human dental pulp stem cells (hDPSCs) exhibited high adhesion, proliferation, and differentiation on PLGA-collagen/PLGA-PEG-PLGA-TGFβ1 nanocomposite scaffolds compared to the control groups. SEM images displayed suitable cell adhesion and distribution of hDPSCs throughout the scaffolds. RT-PCR assay data displayed that TGF-β1 loaded PLGA-PEG-PLGA nanoparticles puts forward chondroblast differentiation in hDPSCs through the expression of chondrogenic genes. The findings revealed that PLGA-collagen/PLGA-PEG-PLGA-TGF-β1 nanocomposite hydrogel can be utilized as a supportive platform to support hDPSCs differentiation by implementing specific physio-chemical features.
© 2022. Controlled Release Society.

Entities:  

Keywords:  Biocompatibility; Cartilage regeneration; Collagen; Nanocomposite hydrogel; Scaffold; Tissue engineering

Year:  2022        PMID: 35650332     DOI: 10.1007/s13346-022-01161-2

Source DB:  PubMed          Journal:  Drug Deliv Transl Res        ISSN: 2190-393X            Impact factor:   4.617


  40 in total

1.  Injectable angiogenic and osteogenic carrageenan nanocomposite hydrogel for bone tissue engineering.

Authors:  Ramanathan Yegappan; Vignesh Selvaprithiviraj; Sivashanmugam Amirthalingam; Annapoorna Mohandas; Nathaniel S Hwang; R Jayakumar
Journal:  Int J Biol Macromol       Date:  2018-10-26       Impact factor: 6.953

Review 2.  Design and fabrication of porous biodegradable scaffolds: a strategy for tissue engineering.

Authors:  Vahideh Raeisdasteh Hokmabad; Soodabeh Davaran; Ali Ramazani; Roya Salehi
Journal:  J Biomater Sci Polym Ed       Date:  2017-07-24       Impact factor: 3.517

3.  Systematic Review of Human Dental Pulp Stem Cells for Cartilage Regeneration.

Authors:  Tiago Lazzaretti Fernandes; João Paulo Cortez de SantAnna; Igor Frisene; João Paulo Gazarini; Carla Cristina Gomes Pinheiro; Andreas H Gomoll; Christian Lattermann; Arnaldo Jose Hernandez; Daniela Franco Bueno
Journal:  Tissue Eng Part B Rev       Date:  2020-01-22       Impact factor: 6.389

Review 4.  Recent advances in hydrogels for cartilage tissue engineering.

Authors:  S L Vega; M Y Kwon; J A Burdick
Journal:  Eur Cell Mater       Date:  2017-01-30       Impact factor: 3.942

5.  Hypoxia-mimicking bioactive glass/collagen glycosaminoglycan composite scaffolds to enhance angiogenesis and bone repair.

Authors:  Elaine Quinlan; Sonia Partap; Maria M Azevedo; Gavin Jell; Molly M Stevens; Fergal J O'Brien
Journal:  Biomaterials       Date:  2015-03-03       Impact factor: 12.479

Review 6.  Advances in stem cell therapy for cartilage regeneration in osteoarthritis.

Authors:  Leire Iturriaga; Raquel Hernáez-Moya; Itsasne Erezuma; Alireza Dolatshahi-Pirouz; Gorka Orive
Journal:  Expert Opin Biol Ther       Date:  2018-07-26       Impact factor: 4.388

Review 7.  Injectable cartilage tissue engineering.

Authors:  Jennifer Elisseeff
Journal:  Expert Opin Biol Ther       Date:  2004-12       Impact factor: 4.388

8.  Rheological, biocompatibility and osteogenesis assessment of fish collagen scaffold for bone tissue engineering.

Authors:  Jeevithan Elango; Jingyi Zhang; Bin Bao; Krishnamoorthy Palaniyandi; Shujun Wang; Wu Wenhui; Jeya Shakila Robinson
Journal:  Int J Biol Macromol       Date:  2016-05-19       Impact factor: 6.953

Review 9.  Should we use cells, biomaterials, or tissue engineering for cartilage regeneration?

Authors:  Jonathan C Bernhard; Gordana Vunjak-Novakovic
Journal:  Stem Cell Res Ther       Date:  2016-04-18       Impact factor: 6.832

10.  A Comparison of the Effects of Silica and Hydroxyapatite Nanoparticles on Poly(ε-caprolactone)-Poly(ethylene glycol)-Poly(ε-caprolactone)/Chitosan Nanofibrous Scaffolds for Bone Tissue Engineering.

Authors:  Vahideh Raeisdasteh Hokmabad; Soodabeh Davaran; Marziyeh Aghazadeh; Effat Alizadeh; Roya Salehi; Ali Ramazani
Journal:  Tissue Eng Regen Med       Date:  2018-08-14       Impact factor: 4.169

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  1 in total

1.  Sustained Delivery of Methylsulfonylmethane from Biodegradable Scaffolds Enhances Efficient Bone Regeneration.

Authors:  Yueming Guo; Pengpeng Li; Zongliang Wang; Peibiao Zhang; Xiaodong Wu
Journal:  Int J Nanomedicine       Date:  2022-10-14
  1 in total

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