Scopus Eşleşmesi Bulundu
8
Atıf
10
Cilt
🔓
Açık Erişim
Scopus Yazarları: Derya Ozhava, Cemile Bektas, Kathleen Lee, Anisha Jackson, Yong Mao
Özet
The demand for innovative therapeutic interventions to expedite wound healing, particularly in vulnerable populations such as aging and diabetic patients, has prompted the exploration of novel strategies. Mesenchymal stem cell (MSC)-based therapy emerges as a promising avenue for treating acute and chronic wounds. However, its clinical application faces persistent challenges, notably the low survivability and limited retention time of engraftment in wound environments. Addressing this, a strategy to sustain the viability and functionality of human MSCs (hMSCs) in a graft-able format has been identified as crucial for advanced wound care. Hydrogel microparticles (HMPs) emerge as promising entities in the field of wound healing, showcasing versatile capabilities in delivering both cells and bioactive molecules/drugs. In this study, gelatin HMPs (GelMPs) were synthesized via an optimized mild processing method. GelMPs with distinct diameter sizes were sorted and characterized. The growth of hMSCs on GelMPs with various sizes was evaluated. The release of wound healing promoting factors from hMSCs cultured on different GelMPs were assessed using scratch wound assays and gene expression analysis. GelMPs with a size smaller than 100 microns supported better cell growth and cell migration compared to larger sizes (100 microns or 200 microns). While encapsulation of hMSCs in hydrogels has been a common route for delivering viable hMSCs, we hypothesized that hMSCs cultured on GelMPs are more robust than those encapsulated in hydrogels. To test this hypothesis, hMSCs were cultured on GelMPs or in the cross-linked methacrylated gelatin hydrogel (GelMA). Comparative analysis of growth and wound healing effects revealed that hMSCs cultured on GelMPs exhibited higher viability and released more wound healing activities in vitro. This observation highlights the potential of GelMPs, especially those with a size smaller than 100 microns, as a promising carrier for delivering hMSCs in wound healing applications, providing valuable insights for the optimization of advanced therapeutic strategies.
Anahtar Kelimeler (Scopus)
gelatin
human mesenchymal stem cells (hMSCs)
hydrogel microparticles
microgels
wound healing
Scimago Dergi Bilgisi
Otomatik ISSN Eşleştirmesi
2024 yılı verileri
Gels
Q1
SJR Quartile
0,847
SJR Skoru
60
H-Index
🔓
Açık Erişim
Kategoriler: Organic Chemistry (Q1) · Polymers and Plastics (Q1) · Bioengineering (Q2) · Biomaterials (Q2)
Alanlar: Chemical Engineering · Chemistry · Materials Science
Ülke: Switzerland
· Multidisciplinary Digital Publishing Institute (MDPI)
Bu bilgiler makale yılına göre Scimago veritabanından ISSN eşleştirmesiyle otomatik getirilmektedir.
Dergi sıralama verileri Scimago'nun ilgili yılı baz alınmaktadır.
Anahtar Kelimeler
wound healing
microgels
hydrogel microparticles
human mesenchymal stem cells (hMSCs)
gelatin
Makale Bilgileri
Dergi
Gels
ISSN
2310-2861
Yıl
2024
/ 1. ay
Cilt / Sayı
10
Makale Türü
Özgün Makale
Hakemlik
Hakemli
Endeks
SCI-Expanded
Yayın Dili
Türkçe
Kapsam
Uluslararası
Toplam Yazar
5 kişi
Erişim Türü
Basılı+Elektronik
Erişim Linki
Makaleye Git
Alan
Fen Bilimleri ve Matematik Temel Alanı
Kimya
Biyokimya
Polimer Bilimi
wound healing,microgels,hydrogel microparticles,human mesenchymal stem cells (hMSCs),gelatin
YÖKSİS Yazar Kaydı
Yazar Adı
ÖZHAVA DERYA,BEKTAŞ CEMİLE,Lee Kathleen,Jackson Anisha,Mao Yong
YÖKSİS ID
8214210
Hızlı Erişim
Metrikler
Scopus Atıf
8
Yazar Sayısı
5