Knockout of MULTI-DRUG RESISTANT PROTEIN 5 Genes Lead to Low Phytic Acid Contents in Oilseed Rape

Understanding phosphate uptake and storage is interesting to optimize the plant performance to phosphorus fluctuations. Phytic acid (PA) is the major source of inorganic phosphorus (Pi) in plants. Genetic analyses of PA pathway transporter genes (BnMRP5) and their functional characterization might p...

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Main Authors: Niharika Sashidhar, Hans J. Harloff, Christian Jung
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-05-01
Series:Frontiers in Plant Science
Subjects:
lpa
Online Access:https://www.frontiersin.org/article/10.3389/fpls.2020.00603/full
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spelling doaj-820b81b6206746fe86710c3e295f48d62020-11-25T03:04:09ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2020-05-011110.3389/fpls.2020.00603537588Knockout of MULTI-DRUG RESISTANT PROTEIN 5 Genes Lead to Low Phytic Acid Contents in Oilseed RapeNiharika SashidharHans J. HarloffChristian JungUnderstanding phosphate uptake and storage is interesting to optimize the plant performance to phosphorus fluctuations. Phytic acid (PA) is the major source of inorganic phosphorus (Pi) in plants. Genetic analyses of PA pathway transporter genes (BnMRP5) and their functional characterization might provide clues in better utilizing the available phosphate resources. Furthermore, the failure to assimilate PA by monogastric animals results in its excess accumulation in manure, which ultimately causes groundwater eutrophication. As a first step toward breeding low PA mutants in oilseed rape (Brassica napus L.), we identified knockout mutants in PA biosynthesis and transporter genes. The obtained M3 single mutants of Bn.MRP5.A10 and Bn.MRP5.C09 were combined by crossing to produce double mutants. Simultaneously, crosses were performed with the non-mutagenized EMS donor genotype to reduce the background mutation load. Double mutants identified from the F2 progeny of direct M3 crosses and BC1 plants showed 15% reduction in PA contents with no significant differences in Pi. We are discussing the function of BnMRP5 paralogs and the benefits for breeding Bnmrp5 mutants in respect to low PA, yield, and stress tolerances.https://www.frontiersin.org/article/10.3389/fpls.2020.00603/fullATP binding cassetteBrassica napusBnMRP5lpaphosphorousTILLING
collection DOAJ
language English
format Article
sources DOAJ
author Niharika Sashidhar
Hans J. Harloff
Christian Jung
spellingShingle Niharika Sashidhar
Hans J. Harloff
Christian Jung
Knockout of MULTI-DRUG RESISTANT PROTEIN 5 Genes Lead to Low Phytic Acid Contents in Oilseed Rape
Frontiers in Plant Science
ATP binding cassette
Brassica napus
BnMRP5
lpa
phosphorous
TILLING
author_facet Niharika Sashidhar
Hans J. Harloff
Christian Jung
author_sort Niharika Sashidhar
title Knockout of MULTI-DRUG RESISTANT PROTEIN 5 Genes Lead to Low Phytic Acid Contents in Oilseed Rape
title_short Knockout of MULTI-DRUG RESISTANT PROTEIN 5 Genes Lead to Low Phytic Acid Contents in Oilseed Rape
title_full Knockout of MULTI-DRUG RESISTANT PROTEIN 5 Genes Lead to Low Phytic Acid Contents in Oilseed Rape
title_fullStr Knockout of MULTI-DRUG RESISTANT PROTEIN 5 Genes Lead to Low Phytic Acid Contents in Oilseed Rape
title_full_unstemmed Knockout of MULTI-DRUG RESISTANT PROTEIN 5 Genes Lead to Low Phytic Acid Contents in Oilseed Rape
title_sort knockout of multi-drug resistant protein 5 genes lead to low phytic acid contents in oilseed rape
publisher Frontiers Media S.A.
series Frontiers in Plant Science
issn 1664-462X
publishDate 2020-05-01
description Understanding phosphate uptake and storage is interesting to optimize the plant performance to phosphorus fluctuations. Phytic acid (PA) is the major source of inorganic phosphorus (Pi) in plants. Genetic analyses of PA pathway transporter genes (BnMRP5) and their functional characterization might provide clues in better utilizing the available phosphate resources. Furthermore, the failure to assimilate PA by monogastric animals results in its excess accumulation in manure, which ultimately causes groundwater eutrophication. As a first step toward breeding low PA mutants in oilseed rape (Brassica napus L.), we identified knockout mutants in PA biosynthesis and transporter genes. The obtained M3 single mutants of Bn.MRP5.A10 and Bn.MRP5.C09 were combined by crossing to produce double mutants. Simultaneously, crosses were performed with the non-mutagenized EMS donor genotype to reduce the background mutation load. Double mutants identified from the F2 progeny of direct M3 crosses and BC1 plants showed 15% reduction in PA contents with no significant differences in Pi. We are discussing the function of BnMRP5 paralogs and the benefits for breeding Bnmrp5 mutants in respect to low PA, yield, and stress tolerances.
topic ATP binding cassette
Brassica napus
BnMRP5
lpa
phosphorous
TILLING
url https://www.frontiersin.org/article/10.3389/fpls.2020.00603/full
work_keys_str_mv AT niharikasashidhar knockoutofmultidrugresistantprotein5genesleadtolowphyticacidcontentsinoilseedrape
AT hansjharloff knockoutofmultidrugresistantprotein5genesleadtolowphyticacidcontentsinoilseedrape
AT christianjung knockoutofmultidrugresistantprotein5genesleadtolowphyticacidcontentsinoilseedrape
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