Low‑intensity pulsed ultrasound accelerates diabetic wound healing by ADSC‑derived exosomes via promoting the uptake of exosomes and enhancing angiogenesis.

IF 5.7 3区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL International journal of molecular medicine Pub Date : 2024-03-01 Epub Date: 2024-01-12 DOI:10.3892/ijmm.2024.5347
Fanglu Zhong, Sheng Cao, Li Yang, Junbi Liu, Bin Gui, Hao Wang, Nan Jiang, Qing Zhou, Qing Deng
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Abstract

Diabetic wounds remain a great challenge for clinicians globally as a lack of effective radical treatment often results in poor prognosis. Exosomes derived from adipose‑derived stem cells (ADSC‑Exos) have been explored as an appealing nanodrug delivery system in the treatment of diabetic wounds. However, the short half‑life and low utilization efficiency of exosomes limit their therapeutic effects. Low‑intensity pulsed ultrasound (LIPUS) provides a non‑invasive mechanical stimulus to cells and exerts a number of biological effects such as cavitation and thermal effects. In the present study, whether LIPUS could enhance ADSC‑Exo‑mediated diabetic wound repair was investigated and its possible mechanism of action was explored. After isolation and characterization, ADSC‑Exos were injected into mice with diabetic wounds, then the mice were exposed to LIPUS irradiation. The control mice were subcutaneously injected with PBS. Wound healing assays, laser Doppler perfusion, Masson's staining and angiogenesis assays were used to assess treatment efficiency. Then, ADSC‑Exos were cocultured with human umbilical vein endothelial cells (HUVECs), and the proliferation, migration and tube formation of HUVECs were assessed. Moreover, the cellular uptake of ADSC‑Exos in vitro and in vivo was assessed to explore the synergistic mechanisms underlying the effects of LIPUS. The in vivo results demonstrated that LIPUS increased the uptake of exosomes and prolonged the residence of exosomes in the wound area, thus enhancing angiogenesis and accelerating wound repair in diabetic mice. The in vitro results further confirmed that LIPUS enhanced the uptake efficiency of ADSC‑Exos by 10.93‑fold and significantly increased the proliferation, migration and tubular formation of HUVECs. Therefore, the present study indicates that LIPUS is a promising strategy to improve the therapeutic effects of ADSC‑Exos in diabetic wounds by promoting the cellular uptake of exosomes and enhancing angiogenesis.

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低强度脉冲超声通过促进外泌体的吸收和增强血管生成,加速 ADSC 衍生外泌体的糖尿病伤口愈合。
糖尿病伤口仍然是全球临床医生面临的巨大挑战,因为缺乏有效的根治治疗往往导致预后不良。从脂肪来源干细胞中提取的外泌体(ADSC-Exos)已被探索作为一种有吸引力的纳米药物递送系统,用于治疗糖尿病伤口。然而,外泌体的半衰期短、利用效率低,限制了其治疗效果。低强度脉冲超声(LIPUS)可对细胞产生非侵入性的机械刺激,并产生空化和热效应等多种生物效应。本研究调查了低强度脉冲超声是否能增强 ADSC-Exo- 介导的糖尿病伤口修复,并探讨了其可能的作用机制。在分离和鉴定 ADSC-Exos 后,将其注射到有糖尿病伤口的小鼠体内,然后对小鼠进行 LIPUS 照射。对照组小鼠皮下注射 PBS。采用伤口愈合试验、激光多普勒灌注试验、Masson 染色试验和血管生成试验评估治疗效果。然后,将 ADSC-Exos 与人脐静脉内皮细胞(HUVECs)共培养,评估 HUVECs 的增殖、迁移和管形成。此外,还对 ADSC-Exos 在体外和体内的细胞吸收情况进行了评估,以探索 LIPUS 作用的协同机制。体内研究结果表明,LIPUS能增加外泌体的吸收,延长外泌体在伤口区域的停留时间,从而促进血管生成,加速糖尿病小鼠的伤口修复。体外研究结果进一步证实,LIPUS能将ADSC-Exos的吸收效率提高10.93倍,并显著增加HUVECs的增殖、迁移和小管形成。因此,本研究表明,LIPUS是通过促进细胞对外泌体的摄取和增强血管生成来改善ADSC-Exos对糖尿病伤口治疗效果的一种有前途的策略。
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来源期刊
International journal of molecular medicine
International journal of molecular medicine 医学-医学:研究与实验
CiteScore
12.30
自引率
0.00%
发文量
124
审稿时长
3 months
期刊介绍: The main aim of Spandidos Publications is to facilitate scientific communication in a clear, concise and objective manner, while striving to provide prompt publication of original works of high quality. The journals largely concentrate on molecular and experimental medicine, oncology, clinical and experimental cancer treatment and biomedical research. All journals published by Spandidos Publications Ltd. maintain the highest standards of quality, and the members of their Editorial Boards are world-renowned scientists.
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