The barrier to radial oxygen loss prevents H2S intrusion and its toxic effect

Research output: Contribution to conferenceConference abstract for conferenceResearchpeer-review

Standard

The barrier to radial oxygen loss prevents H2S intrusion and its toxic effect. / Peralta Ogorek, Lucas León; Takahashi, Hirokazu; Nakazono, Mikio; Pedersen, Ole.

2022. 15 Abstract from 14th Conference of the International Society for Plant Anaerobiosis, Bad Staffelstein, Bavaria, Germany.

Research output: Contribution to conferenceConference abstract for conferenceResearchpeer-review

Harvard

Peralta Ogorek, LL, Takahashi, H, Nakazono, M & Pedersen, O 2022, 'The barrier to radial oxygen loss prevents H2S intrusion and its toxic effect', 14th Conference of the International Society for Plant Anaerobiosis, Bad Staffelstein, Germany, 26/09/2022 - 29/09/2022 pp. 15.

APA

Peralta Ogorek, L. L., Takahashi, H., Nakazono, M., & Pedersen, O. (2022). The barrier to radial oxygen loss prevents H2S intrusion and its toxic effect. 15. Abstract from 14th Conference of the International Society for Plant Anaerobiosis, Bad Staffelstein, Bavaria, Germany.

Vancouver

Peralta Ogorek LL, Takahashi H, Nakazono M, Pedersen O. The barrier to radial oxygen loss prevents H2S intrusion and its toxic effect. 2022. Abstract from 14th Conference of the International Society for Plant Anaerobiosis, Bad Staffelstein, Bavaria, Germany.

Author

Peralta Ogorek, Lucas León ; Takahashi, Hirokazu ; Nakazono, Mikio ; Pedersen, Ole. / The barrier to radial oxygen loss prevents H2S intrusion and its toxic effect. Abstract from 14th Conference of the International Society for Plant Anaerobiosis, Bad Staffelstein, Bavaria, Germany.

Bibtex

@conference{748bff028b274923aabecec2d572b3a3,
title = "The barrier to radial oxygen loss prevents H2S intrusion and its toxic effect",
abstract = "The root barrier to radial oxygen loss (ROL) is a key root trait that prevents oxygen loss from roots to the anoxic soil thereby enabling root elongation into anoxic, waterlogged soils. The ROL barrier was shown to restrict radial intrusion of reduced Fe and H2.We hypothesized that the ROL barrier can also prevent radial intrusion of hydrogen sulphide (H2S), a potent phytotoxin produced by anaerobic bacteria. Using H2S and O2 sensitive microsensors, we measured the apparent permeance to H2S in rice roots and tested if resistance to H2S intrusion reduced its toxic effect on root respiration. Finally, we assessed whether low H2S concentrations could induce the formation of an ROL barrier.The study showed that the ROL barrier reduced apparent permeance to H2S by almost 99%, greatly restricting H2S intrusion. The barrier also protected from the toxic effect of H2S; oxygen consumption in roots with an ROL barrier remained unaffected even at high H2S concentration (500 μM), compared to a 67% decline in roots without a barrier. Importantly, low H2S concentrations induced the formation of an ROL barrier.We demonstrated that the ROL barrier has a strong protective role against H2S intrusion and toxicity, besides preventing O2 loss to the soil. In addition, H2S can act as an environmental signalling molecule for the induction of the ROL barrier. The study demonstrates the functionally versatile nature of the suberized exodermis beyond that of restricted ROL.",
author = "{Peralta Ogorek}, {Lucas Le{\'o}n} and Hirokazu Takahashi and Mikio Nakazono and Ole Pedersen",
year = "2022",
language = "English",
pages = "15",
note = "14th Conference of the International Society for Plant Anaerobiosis, ISPA 2022 ; Conference date: 26-09-2022 Through 29-09-2022",
url = "http://www.is-pa.org",

}

RIS

TY - ABST

T1 - The barrier to radial oxygen loss prevents H2S intrusion and its toxic effect

AU - Peralta Ogorek, Lucas León

AU - Takahashi, Hirokazu

AU - Nakazono, Mikio

AU - Pedersen, Ole

N1 - Conference code: 14

PY - 2022

Y1 - 2022

N2 - The root barrier to radial oxygen loss (ROL) is a key root trait that prevents oxygen loss from roots to the anoxic soil thereby enabling root elongation into anoxic, waterlogged soils. The ROL barrier was shown to restrict radial intrusion of reduced Fe and H2.We hypothesized that the ROL barrier can also prevent radial intrusion of hydrogen sulphide (H2S), a potent phytotoxin produced by anaerobic bacteria. Using H2S and O2 sensitive microsensors, we measured the apparent permeance to H2S in rice roots and tested if resistance to H2S intrusion reduced its toxic effect on root respiration. Finally, we assessed whether low H2S concentrations could induce the formation of an ROL barrier.The study showed that the ROL barrier reduced apparent permeance to H2S by almost 99%, greatly restricting H2S intrusion. The barrier also protected from the toxic effect of H2S; oxygen consumption in roots with an ROL barrier remained unaffected even at high H2S concentration (500 μM), compared to a 67% decline in roots without a barrier. Importantly, low H2S concentrations induced the formation of an ROL barrier.We demonstrated that the ROL barrier has a strong protective role against H2S intrusion and toxicity, besides preventing O2 loss to the soil. In addition, H2S can act as an environmental signalling molecule for the induction of the ROL barrier. The study demonstrates the functionally versatile nature of the suberized exodermis beyond that of restricted ROL.

AB - The root barrier to radial oxygen loss (ROL) is a key root trait that prevents oxygen loss from roots to the anoxic soil thereby enabling root elongation into anoxic, waterlogged soils. The ROL barrier was shown to restrict radial intrusion of reduced Fe and H2.We hypothesized that the ROL barrier can also prevent radial intrusion of hydrogen sulphide (H2S), a potent phytotoxin produced by anaerobic bacteria. Using H2S and O2 sensitive microsensors, we measured the apparent permeance to H2S in rice roots and tested if resistance to H2S intrusion reduced its toxic effect on root respiration. Finally, we assessed whether low H2S concentrations could induce the formation of an ROL barrier.The study showed that the ROL barrier reduced apparent permeance to H2S by almost 99%, greatly restricting H2S intrusion. The barrier also protected from the toxic effect of H2S; oxygen consumption in roots with an ROL barrier remained unaffected even at high H2S concentration (500 μM), compared to a 67% decline in roots without a barrier. Importantly, low H2S concentrations induced the formation of an ROL barrier.We demonstrated that the ROL barrier has a strong protective role against H2S intrusion and toxicity, besides preventing O2 loss to the soil. In addition, H2S can act as an environmental signalling molecule for the induction of the ROL barrier. The study demonstrates the functionally versatile nature of the suberized exodermis beyond that of restricted ROL.

M3 - Conference abstract for conference

SP - 15

T2 - 14th Conference of the International Society for Plant Anaerobiosis

Y2 - 26 September 2022 through 29 September 2022

ER -

ID: 320169471