Development of 3D printed electrospun vascular graft loaded with tetramethylpyrazine for reducing thrombosis and restraining aneurysmal dilatation

Author:

Shen Yihong12,Pan Yanjun34,Liang Fubang34,Song Jiahui12,Yu Xiao12,Cui Jie12,Cai Guangfang12,EL-Newehy Mohamed56,Abdulhameed Meera Moydeen56,Gu Hongbing78,Sun Binbin12,Yin Meng34,Mo Xiumei12ORCID

Affiliation:

1. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials , Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine, College of Biological Science and Medical Engineering, No. 2999 North Renmin Road, Songjiang District, , Shanghai 201620 , PR China

2. Donghua University , Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine, College of Biological Science and Medical Engineering, No. 2999 North Renmin Road, Songjiang District, , Shanghai 201620 , PR China

3. Department of Cardiothoracic Surgery , Shanghai Children’s Medical Center, School of Medicine, , No. 1678 Dongfang Road,Pudong New Area, Shanghai 200127 , PR China

4. Shanghai Jiao Tong University , Shanghai Children’s Medical Center, School of Medicine, , No. 1678 Dongfang Road,Pudong New Area, Shanghai 200127 , PR China

5. Department of Chemistry , College of Science, , P.O. Box 2455, Riyadh 11451 , Saudi Arabia

6. King Saud University , College of Science, , P.O. Box 2455, Riyadh 11451 , Saudi Arabia

7. Department of Cardiovascular Surgery , Shanghai General Hospital, , No. 650 Xinsongjiang Road, Songjiang District, Shanghai 201600 , PR China

8. Shanghai Jiao Tong University School of Medicine , Shanghai General Hospital, , No. 650 Xinsongjiang Road, Songjiang District, Shanghai 201600 , PR China

Abstract

Abstract Background Small-diameter vascular grafts have become the focus of attention in tissue engineering. Thrombosis and aneurysmal dilatation are the two major complications of the loss of vascular access after surgery. Therefore, we focused on fabricating 3D printed electrospun vascular grafts loaded with tetramethylpyrazine (TMP) to overcome these limitations. Methods Based on electrospinning and 3D printing, 3D-printed electrospun vascular grafts loaded with TMP were fabricated. The inner layer of the graft was composed of electrospun poly(L-lactic-co-caprolactone) (PLCL) nanofibers and the outer layer consisted of 3D printed polycaprolactone (PCL) microfibers. The characterization and mechanical properties were tested. The blood compatibility and in vitro cytocompatibility of the grafts were also evaluated. Additionally, rat abdominal aortas were replaced with these 3D-printed electrospun grafts to evaluate their biosafety. Results Mechanical tests demonstrated that the addition of PCL microfibers could improve the mechanical properties. In vitro experimental data proved that the introduction of TMP effectively inhibited platelet adhesion. Afterwards, rat abdominal aorta was replaced with 3D-printed electrospun grafts. The 3D-printed electrospun graft loaded with TMP showed good biocompatibility and mechanical strength within 6 months and maintained substantial patency without the occurrence of acute thrombosis. Moreover, no obvious aneurysmal dilatation was observed. Conclusions The study demonstrated that 3D-printed electrospun vascular grafts loaded with TMP may have the potential for injured vascular healing.

Funder

Science and Technology Commission of Shanghai Municipality

Sino German Science Foundation Research Exchange Center

China Education Association for International Exchange

General Project of SHDC

Fundamental Research Funds for the Central Universities

King Saud University

Publisher

Oxford University Press (OUP)

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