Biolistics-mediated transformation of hornworts and its application to study pyrenoid protein localization

Author:

Lafferty Declan J1ORCID,Robison Tanner A12ORCID,Gunadi Andika3ORCID,Schafran Peter W1ORCID,Gunn Laura H24,Van Eck Joyce15ORCID,Li Fay-Wei12ORCID

Affiliation:

1. Boyce Thompson Institute , Ithaca, NY 14853 , USA

2. Plant Biology Section, School of Integrative Plant Science, Cornell University , Ithaca, NY 14853 , USA

3. J.R. Simplot Company , Boise, ID 83707 , USA

4. Plant Department of Cell and Molecular Biology, Uppsala University , S-751 24 Uppsala , Sweden

5. Plant Breeding and Genetics Section, School of Integrative Plant Science, Cornell University , Ithaca, NY 14853 , USA

Abstract

Abstract Hornworts are a deeply diverged lineage of bryophytes and a sister lineage to mosses and liverworts. Hornworts have an array of unique features that can be leveraged to illuminate not only the early evolution of land plants, but also alternative paths for nitrogen and carbon assimilation via cyanobacterial symbiosis and a pyrenoid-based CO2-concentrating mechanism (CCM), respectively. Despite this, hornworts are one of the few plant lineages with limited available genetic tools. Here we report an efficient biolistics method for generating transient expression and stable transgenic lines in the model hornwort, Anthoceros agrestis. An average of 569 (±268) cells showed transient expression per bombardment, with green fluorescent protein expression observed within 48–72 h. A total of 81 stably transformed lines were recovered across three separate experiments, averaging six lines per bombardment. We followed the same method to transiently transform nine additional hornwort species, and obtained stable transformants from one. This method was further used to verify the localization of Rubisco and Rubisco activase in pyrenoids, which are central proteins for CCM function. Together, our biolistics approach offers key advantages over existing methods as it enables rapid transient expression and can be applied to widely diverse hornwort species.

Funder

National Science Foundation

Publisher

Oxford University Press (OUP)

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