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间充质干细胞与造血干细胞共移植如何在动物模型中改善植入

英文原题:How mesenchymal stem cell cotransplantation with hematopoietic stem cells can improve engraftment in animal models.

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How mesenchymal stem cell cotransplantation with hematopoietic stem cells can improve engraftment in animal models.

PubMed 2022/08/26(内容时间) World J Stem Cells Q2 · IF 4.9(JCR 2025)

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研究概要

临床前研究结果证实,MSCs 在异种和同种异体造血细胞移植动物模型中均能在体内促进 HSC 植入,且无毒性。

研究思路结论见上方概要

骨髓移植(BMT)可应用于造血系统和非造血系统疾病;尽管如此,它仍然伴随着许多挑战和局限性,这些挑战和局限性会导致治疗失败。考虑到这一点,提高BMT成功率的一种可能方法是间充质干细胞(MSCs)和造血干细胞(HSCs)的共移植,以改善骨髓微环境并分泌增强造血植入的分子。

分析HSC和MSC的特征及其在小鼠模型中通过共移植的相互作用。

我们检索了过去十年间在PubMed和Scopus中索引的原创文章,这些文章在动物模型中使用HSC和MSC共移植及体内BMT,同时评估细胞植入。我们排除了体外研究或涉及移植物抗宿主病或其他血液系统疾病的研究,以及非英语发表的文献。在PubMed中,我们初步识别出555篇文章,经过筛选后,仅选择了12篇。在Scopus中,识别出2010篇,经过筛选和资格评估过程后,剩下六篇。

在数据库中找到的2565篇文章中,只有18项原创研究符合纳入标准。HSC按来源分布显示出相似的比例,主要采用人脐带血或动物骨髓,以1 10 7细胞的剂量通过静脉内或骨内途径给药。然而,MSCs以人类供者为主,来源多样(脐带血、骨髓、扁桃体、脂肪组织或胎儿肺),使用较低剂量,主要为10 6细胞,范围为10 4至1.5 10 7细胞,采用相同途径。几乎每项实验在给药前都对MSCs进行了表征。所用受者多为接受低剂量照射或化疗的免疫缺陷小鼠。评估HSC和MSC共移植的主要植入技术是嵌合体,其次是造血重建和生存分析。除植入外,一些研究还评估了归巢和细胞数量。

展开英文摘要原文

Bone marrow transplantation (BMT) can be applied to both hematopoietic and nonhematopoietic diseases; nonetheless, it still comes with a number of challenges and limitations that contribute to treatment failure. Bearing this in mind, a possible way to increase the success rate of BMT would be cotransplantation of mesenchymal stem cells (MSCs) and hematopoietic stem cells (HSCs) to improve the bone marrow niche and secrete molecules that enhance the hematopoietic engraftment. AIM: To analyze HSC and MSC characteristics and their interactions through cotransplantation in murine models.

We searched for original articles indexed in PubMed and Scopus during the last decade that used HSC and MSC cotransplantation and in vivo BMT in animal models while evaluating cell engraftment. We excluded in vitro studies or studies that involved graft versus host disease or other hematological diseases and publications in languages other than English. In PubMed, we initially identified 555 articles and after selection, only 12 were chosen. In Scopus, 2010 were identified, and six were left after the screening and eligibility process.

Of the 2565 articles found in the databases, only 18 original studies met the eligibility criteria. HSC distribution by source showed similar ratios, with human umbilical cord blood or animal bone marrow being administered mainly with a dose of 1 10 7 cells by intravenous or intrabone routes. However, MSCs had a high prevalence of human donors with a variety of sources (umbilical cord blood, bone marrow, tonsil, adipose tissue or fetal lung), using a lower dose, mainly 10 6 cells and ranging 10 4 to 1.5 10 7 cells, utilizing the same routes. MSCs were characterized prior to administration in almost every experiment. The recipient used was mostly immunodeficient mice submitted to low-dose irradiation or chemotherapy. The main technique of engraftment for HSC and MSC cotransplantation evaluation was chimerism, followed by hematopoietic reconstitution and survival analysis. Besides the engraftment, homing and cellularity were also evaluated in some studies.

The preclinical findings validate the potential of MSCs to enable HSC engraftment in vivo in both xenogeneic and allogeneic hematopoietic cell transplantation animal models, in the absence of toxicity.

论文信息

作者
Garrigós MM、de Oliveira FA、Nucci MP、Nucci LP、Alves ADH、Dias OFM、Gamarra LF
第一作者单位
Hospital Israelita Albert Einstein, São Paulo 05652-900, São Paulo, Brazil.Israel
通讯作者单位
Hospital Israelita Albert Einstein, São Paulo 05652-900, São Paulo, Brazil. lionelgamarra7@gmail.com.Israel
期刊
World journal of stem cells2022 Aug 26
原文标识
PubMed 36157912 · DOI 10.4252/wjsc.v14.i8.658