» Articles » PMID: 33864524

Gaseous Environment Modulates Volatile Emission and Viability Loss During Seed Artificial Ageing

Overview
Journal Planta
Specialty Biology
Date 2021 Apr 17
PMID 33864524
Citations 3
Authors
Affiliations
Soon will be listed here.
Abstract

Modulation of the gaseous environment using oxygen absorbers and/or silica gel shows potential for enhancing seed longevity through trapping toxic volatiles emitted by seeds during artificial ageing. Volatile profiling using non-invasive gas chromatography-mass spectrometry provides insight into the specific processes occurring during seed ageing. Production of alcohols, aldehydes and ketones, derived from processes such as alcoholic fermentation, lipid peroxidation and Maillard reactions, are known to be dependent on storage temperature and relative humidity, but little is known about the potential modulating role of the gaseous environment, which also affects seed lifespan, on volatile production. Seeds of Lolium perenne (Poaceae), Agrostemma githago (Caryophyllaceae) and Pisum sativum (Fabaceae) were aged under normal atmospheric oxygen conditions and in sealed vials containing either oxygen absorbers, oxygen absorbers and silica gel (equilibrated at 60% RH), or silica gel alone. Seeds of A. githago that were aged in the absence of oxygen maintained higher viability and produced fewer volatiles than seeds aged in air. In addition, seeds of A. githago and L. perenne aged in the presence of silica gel were longer lived than those aged without silica, with no effect on seed moisture content or oxygen concentration in the storage containers, but with silica gel acting as a volatile trap. These results indicate that the use of inexpensive oxygen absorbers and silica gel could improve seed longevity in storage for some species and suggests a potential, and previously unidentified, role for silica gel in ultra-dry storage.

Citing Articles

Seed Longevity-The Evolution of Knowledge and a Conceptual Framework.

Nadarajan J, Walters C, Pritchard H, Ballesteros D, Colville L Plants (Basel). 2023; 12(3).

PMID: 36771556 PMC: 9919896. DOI: 10.3390/plants12030471.


Choosing the Right Path for the Successful Storage of Seeds.

Trusiak M, Plitta-Michalak B, Michalak M Plants (Basel). 2023; 12(1).

PMID: 36616200 PMC: 9823941. DOI: 10.3390/plants12010072.


X-ray microscopy enables multiscale high-resolution 3D imaging of plant cells, tissues, and organs.

Duncan K, Czymmek K, Jiang N, Thies A, Topp C Plant Physiol. 2021; 188(2):831-845.

PMID: 34618094 PMC: 8825331. DOI: 10.1093/plphys/kiab405.

References
1.
Ballesteros D, Walters C . Detailed characterization of mechanical properties and molecular mobility within dry seed glasses: relevance to the physiology of dry biological systems. Plant J. 2011; 68(4):607-19. DOI: 10.1111/j.1365-313X.2011.04711.x. View

2.
Borisjuk L, Rolletschek H . The oxygen status of the developing seed. New Phytol. 2009; 182(1):17-30. DOI: 10.1111/j.1469-8137.2008.02752.x. View

3.
Borisjuk L, Rolletschek H, Fuchs J, Melkus G, Neuberger T . Low and High Field Magnetic Resonance for in Vivo Analysis of Seeds. Materials (Basel). 2017; 4(8):1426-1439. PMC: 5448675. DOI: 10.3390/ma4081426. View

4.
Buitink J, Leprince O, Hemminga M, Hoekstra F . Molecular mobility in the cytoplasm: an approach to describe and predict lifespan of dry germplasm. Proc Natl Acad Sci U S A. 2000; 97(5):2385-90. PMC: 15810. DOI: 10.1073/pnas.040554797. View

5.
Chen H, Osuna D, Colville L, Lorenzo O, Graeber K, Kuster H . Transcriptome-wide mapping of pea seed ageing reveals a pivotal role for genes related to oxidative stress and programmed cell death. PLoS One. 2013; 8(10):e78471. PMC: 3812160. DOI: 10.1371/journal.pone.0078471. View