In vitro and ex vivo screening of microRNA combinations with enhanced cell penetrating peptides to stimulate intervertebral disc regeneration.

IF 3.4 3区 医学 Q1 ORTHOPEDICS JOR Spine Pub Date : 2024-12-25 eCollection Date: 2024-12-01 DOI:10.1002/jsp2.1366
Tara Ní Néill, Marcos N Barcellona, Niamh Wilson, Fergal J O'Brien, James E Dixon, Caroline M Curtin, Conor T Buckley
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Abstract

Background: Low back pain (LBP) is predominantly caused by degeneration of the intervertebral disc (IVD) and central nucleus pulposus (NP) region. Conservative treatments fail to restore disc function, motivating the exploration of nucleic acid therapies, such as the use of microRNAs (miRNAs). miRNAs have the potential to modulate expression of discogenic factors, while silencing the catabolic cascade associated with degeneration. To deliver these miRNAs, nonviral cell penetrating peptides (CPPs) are gaining favor given their low immunogenicity and strong targeting ability. Single miRNA therapies have been investigated for IVD repair, however dual miRNA delivery strategies have not been commonly examined and may augment regeneration.

Materials and methods: Transfection of four pro-discogenic miRNAs (miRNA mimics:140-5p; 149-5p and inhibitors: 141-3p; 221-3p) and dual delivery of six miRNA pairings was performed using two CPPs, RALA and GET peptide (FLR), in primary rat NP monolayer culture, and in an ex vivo organ culture model of rat caudal discs. Protein expression of discogenic (aggrecan, collagen type II, and SOX9) and catabolic markers (ADAMTS5 and MMP13) were assessed.

Results: Monolayer investigations signified enhanced discogenic marker expression following dual miRNA delivery, signifying a synergistic effect when compared to single miRNA transfection. Utilization of an appropriate model was emphasized in our ex vivo organ culture experiment, revealing the establishment of a regenerative microenvironment characterized by reduced catabolic enzyme activity and enhanced matrix deposition, particularly following concurrent delivery of FLR-miRNA-149-5p mimic and miRNA-221-3p inhibitor. Bioinformatics analysis of miRNA-149-5p mimic and miRNA-221-3p inhibitor identified distinct targets, pathways, and interactions, suggesting a mode of action for this amplified response.

Conclusion: Our findings suggest the potential of FLR-miRNA-149-5p + miRNA-221-3p inhibitor to create an anti-catabolic niche within the disc to foster regeneration in moderate cases of disc degeneration, which could be utilized in further studies with the overarching aim of developing treatments for LBP.

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体外和离体筛选与增强细胞穿透肽的microRNA组合刺激椎间盘再生。
背景:腰痛(LBP)主要由椎间盘退变(IVD)和中央髓核(NP)区域引起。保守治疗不能恢复椎间盘功能,这促使人们探索核酸治疗,如使用microRNAs (miRNAs)。mirna有可能调节椎间盘成因因子的表达,同时沉默与变性相关的分解代谢级联反应。为了传递这些mirna,非病毒细胞穿透肽(CPPs)因其低免疫原性和强靶向能力而受到青睐。已经研究了单miRNA治疗IVD修复的方法,但是双miRNA递送策略尚未得到普遍研究,可能会增加再生。材料和方法:转染4个促盘原microrna (microrna mimics:140-5p;149-5p和抑制剂:141-3p;在原代大鼠NP单层培养和大鼠尾盘离体器官培养模型中,采用RALA和GET肽(FLR)两种CPPs进行了6对miRNA的双重递送。评估盘原蛋白(聚集蛋白、II型胶原和SOX9)和分解代谢标志物(ADAMTS5和MMP13)的蛋白表达。结果:单层研究表明,双重miRNA传递后,盘原标记物表达增强,与单一miRNA转染相比,表明协同效应。我们在体外器官培养实验中强调了适当模型的利用,揭示了以降低分解代谢酶活性和增强基质沉积为特征的再生微环境的建立,特别是在同时递送FLR-miRNA-149-5p模拟物和miRNA-221-3p抑制剂之后。miRNA-149-5p模拟物和miRNA-221-3p抑制剂的生物信息学分析发现了不同的靶点、途径和相互作用,提示了这种放大反应的作用模式。结论:我们的研究结果表明,FLR-miRNA-149-5p + miRNA-221-3p抑制剂可能在中度椎间盘退变病例中在椎间盘内形成抗分解代谢生态位,以促进椎间盘再生,这可以用于进一步的研究,以开发治疗腰痛的总体目标。
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来源期刊
JOR Spine
JOR Spine ORTHOPEDICS-
CiteScore
6.40
自引率
18.90%
发文量
42
审稿时长
10 weeks
期刊最新文献
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