Microenvironment-responsive recombinant collagen XVII-based composite microneedles for the treatment of androgenetic alopecia.

Zheng Xing, Xiaoxiao Zhang, Chen Zhao, Li Zhang, Song Qian, Yun Chu, Wenhao Yang, Yuhui Wang, Jiang Xia, Jianhao Wang
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Abstract

Androgenetic alopecia (AGA) is the most prevalent form of hair loss worldwide. Growth factors have been used to treat hair loss, but their intradermal delivery remains challenging. Type XVII collagen (COL17) has been reported to regulate the aging process of hair follicles (HFs). We reason that combining the therapeutic efficacy of growth factors and collagen biomaterials will provide maximal hair regeneration. Here, we design a microenvironment-responsive recombinant human COL17 microneedle (MRrhCOL17 MN) system for the transdermal delivery of the insulin-like growth factor-1 (IGF-1) to stimulate hair growth. We load IGF-1 into mesoporous polydopamine nanoparticles (MPDAs) to allow for continuous release of the growth factor. When applied to the skin, the composite MNs penetrate the skin, release IGF-1 and rhCOL17 in response to the alteration of the microenvironment and photothermal effect, and stimulate hair growth in a mouse model of AGA. Compared with the clinical drug minoxidil, our MN system more effectively enhances neovascularization, alleviates tissue inflammatory responses, and promotes hair regeneration in AGA mice. These therapeutic effects have been linked to the activation of the VEGF/VEGFR and Src/p38 MAPK signaling pathways. Taken together, the composite MRrhCOL17 MN thereby offers a new option for intractable AGA patients. STATEMENT OF SIGNIFICANCE: Growth factors hold the potential to effectively stimulate the growth of hair follicles; however, their transdermal delivery remains a formidable challenge. In this study, recombinant human type XVII collagen (rhCOL17) is employed as the primary scaffolding material to fabricate microneedles (MNs) for the delivery of insulin-like growth factor 1 (IGF-1), with the aim of promoting hair follicle regeneration. Additionally, the concept of microenvironmental responsiveness is integrated to enable the controlled release of IGF-1 from the MNs. Moreover, the low-temperature photothermal effect of nanoparticles is harnessed to optimize the process of hair regeneration, thereby maximizing the outcome of hair follicle rejuvenation.

微环境响应型重组胶原xvii复合微针治疗雄激素性脱发。
雄激素性脱发(AGA)是世界上最普遍的脱发形式。生长因子已被用于治疗脱发,但其皮内递送仍然具有挑战性。据报道,XVII型胶原蛋白(COL17)可以调节毛囊(HFs)的衰老过程。我们认为,结合生长因子和胶原蛋白生物材料的治疗效果,将提供最大限度的头发再生。在这里,我们设计了一个微环境响应的重组人COL17微针(MRrhCOL17 MN)系统,用于经皮递送胰岛素样生长因子-1 (IGF-1)以刺激头发生长。我们将IGF-1加载到介孔聚多巴胺纳米颗粒(MPDAs)中,以允许生长因子的连续释放。应用于皮肤时,复合MNs穿透皮肤,释放IGF-1和rhCOL17,以响应微环境和光热效应的改变,并刺激AGA小鼠模型的毛发生长。与临床药物米诺地尔相比,我们的MN系统更有效地促进AGA小鼠的新生血管形成,减轻组织炎症反应,促进毛发再生。这些治疗效果与VEGF/VEGFR和Src/p38 MAPK信号通路的激活有关。综上所述,复合MRrhCOL17 MN为难治性AGA患者提供了一种新的选择。重要性声明:生长因子具有有效刺激毛囊生长的潜力;然而,它们的透皮递送仍然是一个艰巨的挑战。本研究以重组人XVII型胶原(rhCOL17)为主要支架材料,制备微针(MNs),用于输送胰岛素样生长因子1 (IGF-1),以促进毛囊再生。此外,微环境响应性的概念被整合到使IGF-1从MNs的可控释放。此外,利用纳米颗粒的低温光热效应来优化头发再生过程,从而最大限度地提高毛囊再生的效果。
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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