SnoRNA Copy Regulation Affects Family Size, Genomic Location and Family Abundance Levels
Overview
Authors
Affiliations
Background: Small nucleolar RNAs (snoRNAs) are an abundant class of noncoding RNAs present in all eukaryotes and best known for their involvement in ribosome biogenesis. In mammalian genomes, many snoRNAs exist in multiple copies, resulting from recombination and retrotransposition from an ancestral snoRNA. To gain insight into snoRNA copy regulation, we used Rfam classification and normal human tissue expression datasets generated using low structure bias RNA-seq to characterize snoRNA families.
Results: We found that although box H/ACA families are on average larger than box C/D families, the number of expressed members is similar for both types. Family members can cover a wide range of average abundance values, but importantly, expression variability of individual members of a family is preferred over the total variability of the family, especially for box H/ACA snoRNAs, suggesting that while members are likely differentially regulated, mechanisms exist to ensure uniformity of the total family abundance across tissues. Box C/D snoRNA family members are mostly embedded in the same host gene while box H/ACA family members tend to be encoded in more than one different host, supporting a model in which box C/D snoRNA duplication occurred mostly by cis recombination while box H/ACA snoRNA families have gained copy members through retrotransposition. And unexpectedly, snoRNAs encoded in the same host gene can be regulated independently, as some snoRNAs within the same family vary in abundance in a divergent way between tissues.
Conclusions: SnoRNA copy regulation affects family sizes, genomic location of the members and controls simultaneously member and total family abundance to respond to the needs of individual tissues.
Profiling of snoRNAs in Exosomes Secreted from Cells Infected with Influenza A Virus.
Rozek W, Kwasnik M, Socha W, Czech B, Rola J Int J Mol Sci. 2025; 26(1.
PMID: 39795871 PMC: 11720657. DOI: 10.3390/ijms26010012.
RNA structure in alternative splicing regulation: from mechanism to therapy.
Bao N, Wang Z, Fu J, Dong H, Jin Y Acta Biochim Biophys Sin (Shanghai). 2024; 57(1):3-21.
PMID: 39034824 PMC: 11802352. DOI: 10.3724/abbs.2024119.
The regulatory roles of small nucleolar RNAs within their host locus.
Fafard-Couture E, Labialle S, Scott M RNA Biol. 2024; 21(1):1-11.
PMID: 38626213 PMC: 11028025. DOI: 10.1080/15476286.2024.2342685.
Small nucleolar RNA and its potential role in the oncogenesis and development of colorectal cancer.
Lan Y, Wu Z, Chen W, Fang Z, Yu X, Wu H World J Gastroenterol. 2024; 30(2):115-127.
PMID: 38312115 PMC: 10835520. DOI: 10.3748/wjg.v30.i2.115.
Paraqindes H, Mourksi N, Ballesta S, Hedjam J, Bourdelais F, Fenouil T Neuro Oncol. 2023; 25(12):2191-2206.
PMID: 37531290 PMC: 10708943. DOI: 10.1093/neuonc/noad140.