Stable isotope signatures of underground seedlings reveal the organic matter gained by adult orchids from mycorrhizal fungi
File(s)FE-2017-00904-R1_Schiebold et al.docx (4.05 MB)
Accepted version
Author(s)
Schweiger, Julienne M-I
Bidartondo, Martin I
Gebauer, Gerhard
Type
Journal Article
Abstract
Orchids produce dust seeds dependent on the provision of organic carbon by mycorrhizal fungi for their early development stages. Hence, all chlorophyllous orchids experience a dramatic switch in trophic strategies from initial mycoheterotrophy to either autotrophy or partial mycoheterotrophy during ontogeny. Yet, the degree to which partially mycoheterotrophic orchids gain carbon from their mycorrhizal fungi is unclear based on existing approaches.
Here, we propose a novel approach to quantify the fungal‐derived organic matter gain of chlorophyllous mature orchids mycorrhizal with rhizoctonia fungi, using the stable isotope signatures of their fully mycoheterotrophic (FMH) seedlings in a linear two‐source mixing model.
We conducted a field germination experiment with seven orchid species and measured carbon, nitrogen and hydrogen stable isotope natural abundances and nitrogen concentrations of mature orchids, underground seedlings, and autotrophic references.
After in situ burial for 19–30 months, germination rates varied considerably among five orchid species and failed for two. On average, underground seedlings were enriched in 13C and 15N relative to mature orchids and had higher nitrogen concentrations. Using the mean enrichment factors ε13C and ε2H of seedlings as FMH endpoint, the organic matter gain derived by mature orchids from mycorrhizas was c. 20%.
Chlorophyllous orchids mycorrhizal with rhizoctonias are predisposed to partially mycoheterotrophic nutrition due to their initially mycoheterotrophic seedling stage. We show that the carbon and hydrogen isotope abundances of underground seedlings can be used in an improved mixing‐model to identify a significant proportion of fungal‐derived organic matter in mature orchids.
Here, we propose a novel approach to quantify the fungal‐derived organic matter gain of chlorophyllous mature orchids mycorrhizal with rhizoctonia fungi, using the stable isotope signatures of their fully mycoheterotrophic (FMH) seedlings in a linear two‐source mixing model.
We conducted a field germination experiment with seven orchid species and measured carbon, nitrogen and hydrogen stable isotope natural abundances and nitrogen concentrations of mature orchids, underground seedlings, and autotrophic references.
After in situ burial for 19–30 months, germination rates varied considerably among five orchid species and failed for two. On average, underground seedlings were enriched in 13C and 15N relative to mature orchids and had higher nitrogen concentrations. Using the mean enrichment factors ε13C and ε2H of seedlings as FMH endpoint, the organic matter gain derived by mature orchids from mycorrhizas was c. 20%.
Chlorophyllous orchids mycorrhizal with rhizoctonias are predisposed to partially mycoheterotrophic nutrition due to their initially mycoheterotrophic seedling stage. We show that the carbon and hydrogen isotope abundances of underground seedlings can be used in an improved mixing‐model to identify a significant proportion of fungal‐derived organic matter in mature orchids.
Date Issued
2018-04-01
Date Acceptance
2017-12-08
Citation
Functional Ecology, 2018, 32 (4), pp.870-881
ISSN
0269-8463
Publisher
Wiley
Start Page
870
End Page
881
Journal / Book Title
Functional Ecology
Volume
32
Issue
4
Copyright Statement
© 2018 The Authors. Functional Ecology © 2018 British Ecological Society. This is the pre-peer reviewed version of the following article, which has been published in final form at https://besjournals.onlinelibrary.wiley.com/doi/abs/10.1111/1365-2435.13042
Identifier
http://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcApp=PARTNER_APP&SrcAuth=LinksAMR&KeyUT=WOS:000429323400003&DestLinkType=FullRecord&DestApp=ALL_WOS&UsrCustomerID=1ba7043ffcc86c417c072aa74d649202
Subjects
Science & Technology
Life Sciences & Biomedicine
Ecology
Environmental Sciences & Ecology
carbon (C)
fungi
hydrogen (H)
mycoheterotrophy
orchid mycorrhiza
orchid seedlings
protocorm
rhizoctonia
PARTIAL MYCOHETEROTROPHY
NATURAL-ABUNDANCE
DIFFERENT COMPARTMENTS
GYMNADENIA-CONOPSEA
MEADOW ORCHIDS
NITROGEN
CARBON
PATTERNS
PLANTS
GREEN
Publication Status
Published
Date Publish Online
2018-01-09