Computational modeling of probiotic recovery from 3D-bioprinted scaffolds for localized vaginal application

Q3 Medicine
Veeresh Rai , Anthony J. Kyser , Dylan A. Goodin , Mohamed Y. Mahmoud , Jill M. Steinbach-Rankins , Hermann B. Frieboes
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引用次数: 0

Abstract

Lactobacilli, play a beneficial role in the female reproductive tract (FRT), regulating pH via lactic acid metabolism to help maintain a healthy environment. Bacterial vaginosis (BV) is characterized by a dysregulated flora in which anaerobes such as Gardnerella vaginalis (Gardnerella) create a less acidic environment. Current treatment focuses on antibiotic administration, including metronidazole, clindamycin, or tinidazole; however, lack of patient compliance as wel as antibiotic resistance may contribute to 50% recurrence within a year. Recently, locally administered probiotic such as Lactobacillus crispatus (L. crispatus) have been evaluated as a prophylactic against recurrence. To mitigate the lack of patient compliance, sustained probiotic delivery has been proposed via 3D-bioprinted delivery vehicles. Successful delivery depends on a variety of vehicle fabrication parameters influencing timing and rate of probiotic recovery; detailed evaluation of these parameters would benefit from computational modeling complementary to experimental evaluation. This study implements a novel simulation platform to evaluate sustained delivery of probiotics from 3D-bioprinted scaffolds, taking into consideration bacterial lactic acid production and associated pH changes. The results show that the timing and rate of probiotic recovery can be realistically simulated based on fabrication parameters that affect scaffold degradation and probiotic survival. Longer term, the proposed approach could help personalize localized probiotic delivery to the FRT to advance women's health.

局部阴道应用的3d生物打印支架中益生菌恢复的计算模型
乳酸杆菌在女性生殖道(FRT)中发挥着有益的作用,通过乳酸代谢调节pH值,帮助维持健康的环境。细菌性阴道病(BV)的特征是菌群失调,其中厌氧菌如阴道加德纳菌(Gardnerella vaginalis)会产生酸性较低的环境。目前的治疗重点是抗生素给药,包括甲硝唑、克林霉素或替硝唑;然而,缺乏患者依从性以及抗生素耐药性可能导致一年内50%的复发。最近,局部施用的益生菌如脆乳杆菌(L.crispatus)已被评估为预防复发。为了缓解患者依从性不足的问题,已经提出通过3D生物打印递送载体持续递送益生菌。成功交付取决于影响益生菌回收时间和速率的各种载体制造参数;这些参数的详细评估将受益于与实验评估互补的计算建模。本研究实现了一个新的模拟平台,以评估益生菌从3D生物打印支架的持续递送,同时考虑细菌乳酸的产生和相关的pH变化。结果表明,基于影响支架降解和益生菌存活的制造参数,可以真实地模拟益生菌回收的时间和速率。从长远来看,拟议的方法可能有助于个性化向FRT提供益生菌,以促进女性健康。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Annals of 3D printed medicine
Annals of 3D printed medicine Medicine and Dentistry (General), Materials Science (General)
CiteScore
4.70
自引率
0.00%
发文量
0
审稿时长
131 days
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