与罕见肥胖相关疾病相关的编码和非编码表达模式:Prader-Willi和Alström综合征。

Merlin G Butler, Kun Wang, Jan D Marshall, Jürgen K Naggert, Jasmine A Rethmeyer, Sumedha S Gunewardena, Ann M Manzardo
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引用次数: 34

摘要

在几种罕见的典型遗传性肥胖相关综合征中,肥胖伴有贪食,包括Prader-Willi综合征(PWS)和Alström综合征(ALMS)。我们利用现成的淋巴母细胞样细胞,比较了PWS、ALMS和非综合征性肥胖成年男性与非肥胖男性的编码和非编码基因表达,以确定肥胖的疾病特异性分子模式和紊乱机制。我们发现,与非肥胖男性相比,ALMS中231个基因上调,但肥胖或PWS男性中未发现基因上调,而ALMS中有124个基因下调。金属硫蛋白基因(MT1X)在ALMS中显著下调,与肥胖男性相同。在PWS中,只有复杂的SNRPN位点受到干扰(下调),15q11-q13区域的几个小核仁rna (SNORD116, SNORD109B, SNORD109A, SNORD107)下调。在ALMS中发现了11个上调和10个下调的snoRNAs,这些snoRNAs靶向影响rRNA加工、发育途径和相关疾病的多个基因。52个与多个重叠基因表达紊乱相关的mirna在ALMS中上调,其中4个与肥胖男性共享,而与PWS男性无关。例如,7个客链microrna (mirna) (miR-93*、miR-373*、miR-29b-2*、miR-30c-1*、miR27a*、miR27b*和miR-149*)与6个下调的靶基因(CD68、FAM102A、MXI1、MYO1D、TP53INP1和ZRANB1)相关,受到干扰。在ALMS中,细胞周期(如PPP3CA)、转录(如POLE2)和发育可能受到上调基因的影响,而发现下调基因参与代谢过程(如FABP3)、免疫反应(如IL32)和细胞信号传导(如IL1B)。ALMS中大量的基因和非编码RNA干扰与PWS和非综合征性肥胖男性的观察结果相反,可能反映了ALMS疾病过程的多器官病理进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Coding and noncoding expression patterns associated with rare obesity-related disorders: Prader-Willi and Alström syndromes.

Coding and noncoding expression patterns associated with rare obesity-related disorders: Prader-Willi and Alström syndromes.

Coding and noncoding expression patterns associated with rare obesity-related disorders: Prader-Willi and Alström syndromes.

Coding and noncoding expression patterns associated with rare obesity-related disorders: Prader-Willi and Alström syndromes.

Obesity is accompanied by hyperphagia in several classical genetic obesity-related syndromes that are rare, including Prader-Willi syndrome (PWS) and Alström syndrome (ALMS). We compared coding and noncoding gene expression in adult males with PWS, ALMS, and nonsyndromic obesity relative to nonobese males using readily available lymphoblastoid cells to identify disease-specific molecular patterns and disturbed mechanisms in obesity. We found 231 genes upregulated in ALMS compared with nonobese males, but no genes were found to be upregulated in obese or PWS males and 124 genes were downregulated in ALMS. The metallothionein gene (MT1X) was significantly downregulated in ALMS, in common with obese males. Only the complex SNRPN locus was disturbed (downregulated) in PWS along with several downregulated small nucleolar RNAs (snoRNAs) in the 15q11-q13 region (SNORD116, SNORD109B, SNORD109A, SNORD107). Eleven upregulated and ten downregulated snoRNAs targeting multiple genes impacting rRNA processing, developmental pathways, and associated diseases were found in ALMS. Fifty-two miRNAs associated with multiple, overlapping gene expression disturbances were upregulated in ALMS, and four were shared with obese males but not PWS males. For example, seven passenger strand microRNAs (miRNAs) (miR-93*, miR-373*, miR-29b-2*, miR-30c-1*, miR27a*, miR27b*, and miR-149*) were disturbed in association with six separate downregulated target genes (CD68, FAM102A, MXI1, MYO1D, TP53INP1, and ZRANB1). Cell cycle (eg, PPP3CA), transcription (eg, POLE2), and development may be impacted by upregulated genes in ALMS, while downregulated genes were found to be involved with metabolic processes (eg, FABP3), immune responses (eg, IL32), and cell signaling (eg, IL1B). The high number of gene and noncoding RNA disturbances in ALMS contrast with observations in PWS and males with nonsyndromic obesity and may reflect the progressing multiorgan pathology of the ALMS disease process.

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