Cargando…

Improved Yield of High Molecular Weight DNA Coincides with Increased Microbial Diversity Access from Iron Oxide Cemented Sub-Surface Clay Environments

Despite over three decades of progress, extraction of high molecular weight (HMW) DNA from high clay soils or iron oxide cemented clay has remained challenging. HMW DNA is desirable for next generation sequencing as it yields the most comprehensive coverage. Several DNA extraction procedures were co...

Descripción completa

Detalles Bibliográficos
Autores principales: Hurt, Richard A., Robeson, Michael S., Shakya, Migun, Moberly, James G., Vishnivetskaya, Tatiana A., Gu, Baohua, Elias, Dwayne A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4102596/
https://www.ncbi.nlm.nih.gov/pubmed/25033199
http://dx.doi.org/10.1371/journal.pone.0102826
_version_ 1782327041180303360
author Hurt, Richard A.
Robeson, Michael S.
Shakya, Migun
Moberly, James G.
Vishnivetskaya, Tatiana A.
Gu, Baohua
Elias, Dwayne A.
author_facet Hurt, Richard A.
Robeson, Michael S.
Shakya, Migun
Moberly, James G.
Vishnivetskaya, Tatiana A.
Gu, Baohua
Elias, Dwayne A.
author_sort Hurt, Richard A.
collection PubMed
description Despite over three decades of progress, extraction of high molecular weight (HMW) DNA from high clay soils or iron oxide cemented clay has remained challenging. HMW DNA is desirable for next generation sequencing as it yields the most comprehensive coverage. Several DNA extraction procedures were compared from samples that exhibit strong nucleic acid adsorption. pH manipulation or use of alternative ion solutions offered no improvement in nucleic acid recovery. Lysis by liquid N(2) grinding in concentrated guanidine followed by concentrated sodium phosphate extraction supported HMW DNA recovery from clays high in iron oxides. DNA recovered using 1 M sodium phosphate buffer (PB) as a competitive desorptive wash was 15.22±2.33 µg DNA/g clay, with most DNA consisting of >20 Kb fragments, compared to 2.46±0.25 µg DNA/g clay with the Powerlyzer system (MoBio). Increasing PB concentration in the lysis reagent coincided with increasing DNA fragment length during initial extraction. Rarefaction plots of 16S rRNA (V1–V3 region) pyrosequencing from A-horizon and clay soils showed an ∼80% and ∼400% larger accessed diversity compared to the Powerlyzer soil DNA system, respectively. The observed diversity from the Firmicutes showed the strongest increase with >3-fold more operational taxonomic units (OTU) recovered.
format Online
Article
Text
id pubmed-4102596
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-41025962014-07-21 Improved Yield of High Molecular Weight DNA Coincides with Increased Microbial Diversity Access from Iron Oxide Cemented Sub-Surface Clay Environments Hurt, Richard A. Robeson, Michael S. Shakya, Migun Moberly, James G. Vishnivetskaya, Tatiana A. Gu, Baohua Elias, Dwayne A. PLoS One Research Article Despite over three decades of progress, extraction of high molecular weight (HMW) DNA from high clay soils or iron oxide cemented clay has remained challenging. HMW DNA is desirable for next generation sequencing as it yields the most comprehensive coverage. Several DNA extraction procedures were compared from samples that exhibit strong nucleic acid adsorption. pH manipulation or use of alternative ion solutions offered no improvement in nucleic acid recovery. Lysis by liquid N(2) grinding in concentrated guanidine followed by concentrated sodium phosphate extraction supported HMW DNA recovery from clays high in iron oxides. DNA recovered using 1 M sodium phosphate buffer (PB) as a competitive desorptive wash was 15.22±2.33 µg DNA/g clay, with most DNA consisting of >20 Kb fragments, compared to 2.46±0.25 µg DNA/g clay with the Powerlyzer system (MoBio). Increasing PB concentration in the lysis reagent coincided with increasing DNA fragment length during initial extraction. Rarefaction plots of 16S rRNA (V1–V3 region) pyrosequencing from A-horizon and clay soils showed an ∼80% and ∼400% larger accessed diversity compared to the Powerlyzer soil DNA system, respectively. The observed diversity from the Firmicutes showed the strongest increase with >3-fold more operational taxonomic units (OTU) recovered. Public Library of Science 2014-07-17 /pmc/articles/PMC4102596/ /pubmed/25033199 http://dx.doi.org/10.1371/journal.pone.0102826 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open-access article distributed under the terms of the Creative Commons Public Domain declaration, which stipulates that, once placed in the public domain, this work may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose.
spellingShingle Research Article
Hurt, Richard A.
Robeson, Michael S.
Shakya, Migun
Moberly, James G.
Vishnivetskaya, Tatiana A.
Gu, Baohua
Elias, Dwayne A.
Improved Yield of High Molecular Weight DNA Coincides with Increased Microbial Diversity Access from Iron Oxide Cemented Sub-Surface Clay Environments
title Improved Yield of High Molecular Weight DNA Coincides with Increased Microbial Diversity Access from Iron Oxide Cemented Sub-Surface Clay Environments
title_full Improved Yield of High Molecular Weight DNA Coincides with Increased Microbial Diversity Access from Iron Oxide Cemented Sub-Surface Clay Environments
title_fullStr Improved Yield of High Molecular Weight DNA Coincides with Increased Microbial Diversity Access from Iron Oxide Cemented Sub-Surface Clay Environments
title_full_unstemmed Improved Yield of High Molecular Weight DNA Coincides with Increased Microbial Diversity Access from Iron Oxide Cemented Sub-Surface Clay Environments
title_short Improved Yield of High Molecular Weight DNA Coincides with Increased Microbial Diversity Access from Iron Oxide Cemented Sub-Surface Clay Environments
title_sort improved yield of high molecular weight dna coincides with increased microbial diversity access from iron oxide cemented sub-surface clay environments
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4102596/
https://www.ncbi.nlm.nih.gov/pubmed/25033199
http://dx.doi.org/10.1371/journal.pone.0102826
work_keys_str_mv AT hurtricharda improvedyieldofhighmolecularweightdnacoincideswithincreasedmicrobialdiversityaccessfromironoxidecementedsubsurfaceclayenvironments
AT robesonmichaels improvedyieldofhighmolecularweightdnacoincideswithincreasedmicrobialdiversityaccessfromironoxidecementedsubsurfaceclayenvironments
AT shakyamigun improvedyieldofhighmolecularweightdnacoincideswithincreasedmicrobialdiversityaccessfromironoxidecementedsubsurfaceclayenvironments
AT moberlyjamesg improvedyieldofhighmolecularweightdnacoincideswithincreasedmicrobialdiversityaccessfromironoxidecementedsubsurfaceclayenvironments
AT vishnivetskayatatianaa improvedyieldofhighmolecularweightdnacoincideswithincreasedmicrobialdiversityaccessfromironoxidecementedsubsurfaceclayenvironments
AT gubaohua improvedyieldofhighmolecularweightdnacoincideswithincreasedmicrobialdiversityaccessfromironoxidecementedsubsurfaceclayenvironments
AT eliasdwaynea improvedyieldofhighmolecularweightdnacoincideswithincreasedmicrobialdiversityaccessfromironoxidecementedsubsurfaceclayenvironments