Identification of oligo-adenylated small RNAs in the parasite Entamoeba and a potential role for small RNA control

Abstract Background The RNA interference (RNAi) pathway is a gene regulation mechanism that utilizes small RNA (sRNA) and Argonaute (Ago) proteins to silence target genes. Our previous work identified a functional RNAi pathway in the protozoan parasite Entamoeba histolytica, including abundant 27 nt...

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Main Authors: Hanbang Zhang, Gretchen M. Ehrenkaufer, Neil Hall, Upinder Singh
Format: Article
Language:English
Published: BMC 2020-12-01
Series:BMC Genomics
Subjects:
Online Access:https://doi.org/10.1186/s12864-020-07275-6
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spelling doaj-98ea66793cae41d3aba6c2b74f641a682020-12-13T12:18:18ZengBMCBMC Genomics1471-21642020-12-0121111810.1186/s12864-020-07275-6Identification of oligo-adenylated small RNAs in the parasite Entamoeba and a potential role for small RNA controlHanbang Zhang0Gretchen M. Ehrenkaufer1Neil Hall2Upinder Singh3Division of Infectious Diseases, Department of Internal Medicine, Stanford University School of MedicineDivision of Infectious Diseases, Department of Internal Medicine, Stanford University School of MedicineEarlham Institute, Norwich Research ParkDivision of Infectious Diseases, Department of Internal Medicine, Stanford University School of MedicineAbstract Background The RNA interference (RNAi) pathway is a gene regulation mechanism that utilizes small RNA (sRNA) and Argonaute (Ago) proteins to silence target genes. Our previous work identified a functional RNAi pathway in the protozoan parasite Entamoeba histolytica, including abundant 27 nt antisense sRNA populations which associate with EhAgo2–2 protein. However, there is lack of understanding about the sRNAs that are bound to two other EhAgos (EhAgo2–1 and 2–3), and the mechanism of sRNA regulation itself is unclear in this parasite. Therefore, identification of the entire pool of sRNA species and their sub-populations that associate with each individual EhAgo protein would be a major step forward. Results In the present study, we sequenced sRNA libraries from both total RNAs and EhAgo bound RNAs. We identified a new population of 31 nt sRNAs that results from the addition of a non-templated 3–4 adenosine nucleotides at the 3′-end of the 27 nt sRNAs, indicating a non-templated RNA-tailing event in the parasite. The relative abundance of these two sRNA populations is linked to the efficacy of gene silencing for the target gene when parasites are transfected with an RNAi-trigger construct, indicating that non-templated sRNA-tailing likely play a role in sRNA regulation in this parasite. We found that both sRNA populations (27 nt and 31 nt) are present in the related parasite Entamoeba invadens, and are unchanged during the development. In sequencing the sRNAs associating with the three EhAgo proteins, we observed that despite distinct cellular localization, all three EhAgo sRNA libraries contain 27 nt sRNAs with 5′-polyphosphate (5′-polyP) structure and share a largely overlapping sRNA repertoire. In addition, our data showed that a fraction of 31 nt sRNAs associate with EhAgo2–2 but not with its mutant protein (C-terminal deletion), nor other two EhAgos, indicating a specific EhAgo site may be required for sRNA modification process in the parasite. Conclusion We identified a new population of sRNA with non-templated oligo-adenylation modification, which is the first such observation amongst single celled protozoan parasites. Our sRNA sequencing libraries provide the first comprehensive sRNA dataset for all three Entamoeba Ago proteins, which can serve as a useful database for the amoeba community.https://doi.org/10.1186/s12864-020-07275-6RNAiSmall RNASmall RNA sequencingArgonauteSmall RNA oligo-adenylationParasite
collection DOAJ
language English
format Article
sources DOAJ
author Hanbang Zhang
Gretchen M. Ehrenkaufer
Neil Hall
Upinder Singh
spellingShingle Hanbang Zhang
Gretchen M. Ehrenkaufer
Neil Hall
Upinder Singh
Identification of oligo-adenylated small RNAs in the parasite Entamoeba and a potential role for small RNA control
BMC Genomics
RNAi
Small RNA
Small RNA sequencing
Argonaute
Small RNA oligo-adenylation
Parasite
author_facet Hanbang Zhang
Gretchen M. Ehrenkaufer
Neil Hall
Upinder Singh
author_sort Hanbang Zhang
title Identification of oligo-adenylated small RNAs in the parasite Entamoeba and a potential role for small RNA control
title_short Identification of oligo-adenylated small RNAs in the parasite Entamoeba and a potential role for small RNA control
title_full Identification of oligo-adenylated small RNAs in the parasite Entamoeba and a potential role for small RNA control
title_fullStr Identification of oligo-adenylated small RNAs in the parasite Entamoeba and a potential role for small RNA control
title_full_unstemmed Identification of oligo-adenylated small RNAs in the parasite Entamoeba and a potential role for small RNA control
title_sort identification of oligo-adenylated small rnas in the parasite entamoeba and a potential role for small rna control
publisher BMC
series BMC Genomics
issn 1471-2164
publishDate 2020-12-01
description Abstract Background The RNA interference (RNAi) pathway is a gene regulation mechanism that utilizes small RNA (sRNA) and Argonaute (Ago) proteins to silence target genes. Our previous work identified a functional RNAi pathway in the protozoan parasite Entamoeba histolytica, including abundant 27 nt antisense sRNA populations which associate with EhAgo2–2 protein. However, there is lack of understanding about the sRNAs that are bound to two other EhAgos (EhAgo2–1 and 2–3), and the mechanism of sRNA regulation itself is unclear in this parasite. Therefore, identification of the entire pool of sRNA species and their sub-populations that associate with each individual EhAgo protein would be a major step forward. Results In the present study, we sequenced sRNA libraries from both total RNAs and EhAgo bound RNAs. We identified a new population of 31 nt sRNAs that results from the addition of a non-templated 3–4 adenosine nucleotides at the 3′-end of the 27 nt sRNAs, indicating a non-templated RNA-tailing event in the parasite. The relative abundance of these two sRNA populations is linked to the efficacy of gene silencing for the target gene when parasites are transfected with an RNAi-trigger construct, indicating that non-templated sRNA-tailing likely play a role in sRNA regulation in this parasite. We found that both sRNA populations (27 nt and 31 nt) are present in the related parasite Entamoeba invadens, and are unchanged during the development. In sequencing the sRNAs associating with the three EhAgo proteins, we observed that despite distinct cellular localization, all three EhAgo sRNA libraries contain 27 nt sRNAs with 5′-polyphosphate (5′-polyP) structure and share a largely overlapping sRNA repertoire. In addition, our data showed that a fraction of 31 nt sRNAs associate with EhAgo2–2 but not with its mutant protein (C-terminal deletion), nor other two EhAgos, indicating a specific EhAgo site may be required for sRNA modification process in the parasite. Conclusion We identified a new population of sRNA with non-templated oligo-adenylation modification, which is the first such observation amongst single celled protozoan parasites. Our sRNA sequencing libraries provide the first comprehensive sRNA dataset for all three Entamoeba Ago proteins, which can serve as a useful database for the amoeba community.
topic RNAi
Small RNA
Small RNA sequencing
Argonaute
Small RNA oligo-adenylation
Parasite
url https://doi.org/10.1186/s12864-020-07275-6
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