Systematic study of single-cell isolation from musculoskeletal tissues for single-sell sequencing.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Manman Gao, Peng Guo, Xizhe Liu, Penghui Zhang, Zhongyuan He, Liru Wen, Shaoyu Liu, Zhiyu Zhou, Weimin Zhu
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引用次数: 3

Abstract

Background: The single-cell platform provided revolutionary way to study cellular biology. Technologically, a sophistic protocol of isolating qualified single cells would be key to deliver to single-cell platform, which requires high cell viability, high cell yield and low content of cell aggregates or doublets. For musculoskeletal tissues, like bone, cartilage, nucleus pulposus and tendons, as well as their pathological state, which are tense and dense, it's full of challenge to efficiently and rapidly prepare qualified single-cell suspension. Conventionally, enzymatic dissociation methods were wildly used but lack of quality control. In the present study, we designed the rapid cycling enzymatic processing method using tissue-specific enzyme cocktail to treat different human pathological musculoskeletal tissues, including degenerated nucleus pulposus (NP), ossifying posterior longitudinal ligament (OPLL) and knee articular cartilage (AC) with osteoarthritis aiming to rapidly and efficiently harvest qualified single-cell suspensions for single-cell RNA-sequencing (scRNA-seq).

Results: We harvested highly qualified single-cell suspensions from NP and OPLL with sufficient cell numbers and high cell viability using the rapid cycling enzymatic processing method, which significantly increased the cell viability compared with the conventional long-time continuous digestion group (P < 0.05). Bioanalyzer trace showed expected cDNA size distribution of the scRNA-seq library and a clear separation of cellular barcodes from background partitions were verified by the barcode-rank plot after sequencing. T-SNE visualization revealed highly heterogeneous cell subsets in NP and OPLL. Unfortunately, we failed to obtain eligible samples from articular cartilage due to low cell viability and excessive cell aggregates and doublets.

Conclusions: In conclusion, using the rapid cycling enzymatic processing method, we provided thorough protocols for preparing single-cell suspensions from human musculoskeletal tissues, which was timesaving, efficient and protective to cell viability. The strategy would greatly guarantee the cell heterogeneity, which is critical for scRNA-seq data analysis. The protocol to treat human OA articular cartilage should be further improved.

Abstract Image

Abstract Image

Abstract Image

从肌肉骨骼组织中分离单细胞进行单次测序的系统研究。
背景:单细胞平台为细胞生物学的研究提供了革命性的途径。从技术上讲,分离合格的单细胞的复杂方案将是交付单细胞平台的关键,这需要高细胞活力,高细胞产量和低细胞聚集体或双分子含量。对于骨、软骨、髓核、肌腱等肌肉骨骼组织及其紧张致密的病理状态,高效、快速制备合格的单细胞悬液是一项充满挑战的工作。传统的酶解方法被广泛使用,但缺乏质量控制。在本研究中,我们设计了一种使用组织特异性酶鸡尾酒的快速循环酶处理方法,用于治疗不同的人类病理肌肉骨骼组织,包括退行性髓核(NP),骨化后纵韧带(OPLL)和膝关节软骨(AC)与骨关节炎,旨在快速有效地收获合格的单细胞悬液进行单细胞rna测序(scRNA-seq)。结果:采用快速循环酶处理方法,获得的NP和OPLL单细胞悬液质量高,细胞数量充足,细胞活力高,与常规长时间连续消化组相比,细胞活力显著提高(P < 0.05)。生物分析仪显示了预期的scRNA-seq文库cDNA大小分布,测序后的条形码等级图证实了细胞条形码与背景分区的清晰分离。T-SNE可视化显示NP和OPLL的细胞亚群高度异质性。不幸的是,由于低细胞活力和过多的细胞聚集和双重,我们未能从关节软骨中获得合格的样本。结论:采用快速循环酶处理方法制备人体肌肉骨骼组织单细胞悬液,具有省时、高效和保护细胞活力的优点。该策略将极大地保证细胞的异质性,这对scRNA-seq数据分析至关重要。治疗人OA关节软骨的方案有待进一步完善。
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
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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