Valentini Luca, Chiesa Irene, De Maria Carmelo, Ugolini Sara, Volpe Yary, Mussi Elisa, Pappalardo Lucia, Coletta Riccardo, Morabito Antonino
Dipartimento di Ingegneria Civile e Ambientale, Università di Perugia, UdR INSTM, 05100 Terni, Italy.
Department of Ingegneria dell'Informazione and Research Center E. Piaggio, University of Pisa, 56124 Pisa, Italy.
Bioengineering (Basel). 2022 Nov 6;9(11):658. doi: 10.3390/bioengineering9110658.
Auxetic materials can be exploited for coupling different types of tissues. Herein, we designed a material where the microorganism metabolic activity yields the formation of buckled/collapsed bubbles within gelling silicone cylinders thus providing auxetic properties. The finite element model of such hollow auxetic cylinders demonstrated the tubular structure to promote worm-like peristalsis. In this scenario, the described hybrid auxetic structures may be applied to the longitudinal intestinal lengthening and tailoring procedure to promote enteral autonomy in short bowel syndrome. The presented material and analytical design synergistic approach offer a pioneering step for the clinical translation of hybrid auxetic materials.
拉胀材料可用于连接不同类型的组织。在此,我们设计了一种材料,微生物代谢活性会在凝胶化硅树脂圆柱体中产生弯曲/塌陷的气泡,从而赋予其拉胀特性。这种空心拉胀圆柱体的有限元模型表明,管状结构可促进蠕虫样蠕动。在这种情况下,所描述的混合拉胀结构可应用于肠道纵向延长和剪裁手术,以促进短肠综合征患者的肠道自主功能。所展示的材料和分析设计协同方法为混合拉胀材料的临床转化迈出了开创性的一步。