Ihsan Ullah
Tianjin University
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Publication
Featured researches published by Ihsan Ullah.
Journal of Materials Chemistry B | 2017
Qian Li; Xuefang Hao; Juan Lv; Xiangkui Ren; Kunyu Zhang; Ihsan Ullah; Yakai Feng; Changcan Shi; Wencheng Zhang
Gene delivery can enhance the endothelialization of biomaterial surfaces. However, the lack of efficient target function is still the major concern that hinders the clinical application of gene therapy. With the aim to develop a specific targeting gene carrier for endothelial cells (ECs), the Cys-Arg-Glu-Asp-Val-Trp (CREDVW) peptide was linked to the comb-like copolymer of poly(lactide-co-3(S)-methyl-morpholine-2,5-dione)-poly(poly(ethylene glycol) monomethacrylate) (PLMD-PPEGMA) to form the CREDVW modified copolymer PLMD-PPEGMA-CREDVW, which could enhance the special recognition of ECs. Mixed micelles were then prepared by co-assembling this comb-like copolymer and the amphiphilic grafting copolymer poly(lactide-co-3(S)-methyl-morpholine-2,5-dione)-g-polyethylenimine (PLMD-g-PEI). These mixed micelles with the CREDVW-functional peptide exhibited good pEGFP-ZNF580 (pDNA) binding ability and could condense it into complexes with proper size and positive zeta potential. The MTT results demonstrated the low cytotoxicity of the CREDVW-modified mixed micelle/pDNA complexes. The internalization efficiency of the CREDVW-modified complexes with targeting function was about two times higher than the dysfunctional CREVDW-modified complexes. Besides, the transfection efficiency of these complexes was more pronounced, compared to the control group, PEI(10 kDa)/pDNA, as detected by means of in vitro transfection studies. Western blot analysis demonstrated relatively high protein levels in the transfected cells by CREDVW-modified mixed micelle/pDNA complexes, up to 75%, in comparison to the control group (26%). In addition, the cell migration ability was significantly improved as demonstrated by the wound healing assay. These results indicated that the mixed micelles could act as an active targeting gene carrier, having both tunable gene transfection efficiency and low cytotoxicity, which are beneficial for the endothelialization of biomaterial surface.
Polymers | 2016
Yakai Feng; Wei Lu; Xiangkui Ren; Wen Liu; Mengyang Guo; Ihsan Ullah; Wencheng Zhang
Biomimetic scaffolds have been investigated in vascular tissue engineering for many years. Excellent biodegradable materials are desired as temporary scaffolds to support cell growth and disappear gradually with the progress of guided tissue regeneration. In the present paper, a series of biodegradable copolymers were synthesized and used to prepared micro/nanofibrous scaffolds for vascular tissue engineering. Poly(lactide-co-glycolide-co-3(S)-methyl-morpholine-2,5-dione) [P(LA-co-GA-co-MMD)] copolymers with different l-lactide (LA), glycolide (GA), and 3(S)-methyl-2,5-morpholinedione (MMD) contents were synthesized using stannous octoate as a catalyst. Moreover, the P(LA-co-GA-co-MMD) nanofibrous scaffolds were prepared by electrospinning technology. The morphology of scaffolds was analyzed by scanning electron microscopy (SEM), and the results showed that the fibers are smooth, regular, and randomly oriented with diameters of 700 ± 100 nm. The weight loss of scaffolds increased significantly with the increasing content of MMD, indicating good biodegradable property of the scaffolds. In addition, the cytocompatibility of electrospun nanofibrous scaffolds was tested by human umbilical vein endothelial cells. It is demonstrated that the cells could attach and proliferate well on P(LA-co-GA-co-MMD) scaffolds and, consequently, form a cell monolayer fully covering on the scaffold surface. Furthermore, the P(LA-co-GA-co-MMD) scaffolds benefit to excellent cell infiltration after subcutaneous implantation. These results indicated that the P(LA-co-GA-co-MMD) nanofibrous scaffolds could be potential candidates for vascular tissue engineering.
Journal of Materials Chemistry B | 2017
Ihsan Ullah; Khan Muhammad; Mary Akpanyung; Abdelilah Nejjari; Agnaldo Luis Neve; Jintang Guo; Yakai Feng; Changcan Shi
Recently, synthetic gene carriers have been intensively developed owing to their promising application in gene therapy and considered as a suitable alternative to viral vectors because of several benefits. But cationic polymers still face some problems like low transfection efficiency, cytotoxicity, and poor cell recognition and internalization. The emerging engineered and smart polymers can respond to some changes in the biological environment like pH change, ionic strength change and redox potential, which is beneficial for cellular uptake. Redox-sensitive disulfide based and hydrolytically degradable cationic polymers serve as gene carriers with excellent transfection efficiency and good biocompatibility owing to degradation in the cytoplasm. Additionally, biodegradable polymeric micelles with cell-targeting function are recently emerging gene carriers, especially for the transfection of endothelial cells. In this review, some strategies for gene carriers based on these bioreducible and hydrolytically degradable polymers will be illustrated.
Biomaterials Science | 2017
Xiao Yang; Wen Liu; Na Li; Mingshan Wang; Bin Liang; Ihsan Ullah; Agnaldo Luis Neve; Yakai Feng; Hao Chen; Changcan Shi
Journal of Postgraduate Medical Institute | 2011
Mahid Iqbal; Khurshid Anwar; Ihsan Ullah; Muhammad Javed; Iftikhar Ahmad Khan; Gulshan Hussain
Journal of Postgraduate Medical Institute | 2011
Muhammad Ashfaq; Naseer Ahmad; Ihsan Ullah; Malik Javed Iqbal
arXiv: Software Engineering | 2012
Muhammad Tariq Javed; Bashir Ahmad; Zaffar Abbas; Allah Nawaz; Muhammad Abid; Ihsan Ullah
Materials Today Chemistry | 2018
Murtaza Hasan; Ihsan Ullah; Hina Zulfiqar; Komal Naeem; Arfa Iqbal; Huma Gul; Muhammad Ashfaq; Nasir Mahmood
Journal of Natural Sciences Research | 2014
Subhan ud Din; Ihsan Ullah; Gul Daraz Khan; Muhammad Ramzan; Bashir Ahmad; Muhammad Hameed
Information and Knowledge Management | 2012
Khalid Mahmood; Bashir Ahmad; Allah Nawaz; Ihsan Ullah; Muhammad Abid