Nandi Seema, Mihalko Emily, Nellenbach Kimberly, Castaneda Mario, Schneible John, Harp Mary, Deal Halston, Daniele Michael, Menegatti Stefano, Barker Thomas H, Brown Ashley C
Joint Department of Biomedical Engineering, University of North Carolina at Chapel Hill/North Carolina State University, Raleigh, NC, USA.
Comparative Medicine Institute, North Carolina State University, Raleigh, NC, USA.
Adv Ther (Weinh). 2021 May 10;4(5). doi: 10.1002/adtp.202100010. Epub 2021 Mar 18.
Native platelets are crucial players in wound healing. Key to their role is the ability of their surface receptor GPIIb/IIIa to bind fibrin at injury sites, thereby promoting clotting. When platelet activity is impaired as a result of traumatic injury or certain diseases, uncontrolled bleeding can result. To aid clotting and tissue repair in cases of poor platelet activity, our lab has previously developed synthetic platelet-like particles capable of promoting clotting and improving wound healing responses. These are constructed by functionalizing highly deformable hydrogel microparticles (microgels) with fibrin-binding ligands including a fibrin-specific whole antibody or a single-domain variable fragment. To improve the translational potential of these clotting materials, we explored the use of fibrin-binding peptides as cost-effective, robust, high-specificity alternatives to antibodies. Herein, we present the development and characterization of soft microgels decorated with the peptide AHRPYAAK that mimics fibrin knob 'B' and targets fibrin hole 'b'. These "Fibrin-Affine Microgels with Clotting Yield" (FAMCY) were found to significantly increase clot density and decrease bleeding in a rodent trauma model . These results indicate that FAMCYs are capable of recapitulating the platelet-mimetic properties of previous designs while utilizing a less costly, more translational design.
天然血小板是伤口愈合过程中的关键参与者。其作用的关键在于其表面受体糖蛋白IIb/IIIa能够在损伤部位结合纤维蛋白,从而促进凝血。当血小板活性因创伤或某些疾病而受损时,可能会导致无法控制的出血。为了在血小板活性较差的情况下辅助凝血和组织修复,我们实验室此前开发了能够促进凝血并改善伤口愈合反应的合成血小板样颗粒。这些颗粒是通过用包括纤维蛋白特异性全抗体或单域可变片段在内的纤维蛋白结合配体对高度可变形的水凝胶微粒(微凝胶)进行功能化构建而成的。为了提高这些凝血材料的转化潜力,我们探索了使用纤维蛋白结合肽作为抗体的经济高效、稳健且高特异性的替代品。在此,我们展示了用模拟纤维蛋白钮“B”并靶向纤维蛋白孔“b”的肽AHRPYAAK修饰的软微凝胶的开发和表征。这些“具有凝血产率的纤维蛋白亲和微凝胶”(FAMCY)在啮齿动物创伤模型中被发现可显著增加血凝块密度并减少出血。这些结果表明,FAMCY能够重现先前设计的模拟血小板特性,同时采用成本更低、更具转化潜力的设计。