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Hazelnut Pollen Phenotyping Using Label-Free Impedance Flow Cytometry

Impedance flow cytometry (IFC) is a versatile lab-on-chip technology which enables fast and label-free analysis of pollen grains in various plant species, promising new research possibilities in agriculture and plant breeding. Hazelnut is a monoecious, anemophilous species, exhibiting sporophytic se...

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Autores principales: Ascari, Lorenzo, Cristofori, Valerio, Macrì, Federico, Botta, Roberto, Silvestri, Cristian, De Gregorio, Tommaso, Huerta, Eloy Suarez, Di Berardino, Marco, Kaufmann, Silvan, Siniscalco, Consolata
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7753158/
https://www.ncbi.nlm.nih.gov/pubmed/33370424
http://dx.doi.org/10.3389/fpls.2020.615922
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author Ascari, Lorenzo
Cristofori, Valerio
Macrì, Federico
Botta, Roberto
Silvestri, Cristian
De Gregorio, Tommaso
Huerta, Eloy Suarez
Di Berardino, Marco
Kaufmann, Silvan
Siniscalco, Consolata
author_facet Ascari, Lorenzo
Cristofori, Valerio
Macrì, Federico
Botta, Roberto
Silvestri, Cristian
De Gregorio, Tommaso
Huerta, Eloy Suarez
Di Berardino, Marco
Kaufmann, Silvan
Siniscalco, Consolata
author_sort Ascari, Lorenzo
collection PubMed
description Impedance flow cytometry (IFC) is a versatile lab-on-chip technology which enables fast and label-free analysis of pollen grains in various plant species, promising new research possibilities in agriculture and plant breeding. Hazelnut is a monoecious, anemophilous species, exhibiting sporophytic self-incompatibility. Its pollen is dispersed by wind in midwinter when temperatures are still low and relative humidity is usually high. Previous research found that hazelnut can be characterized by high degrees of pollen sterility following a reciprocal chromosome translocation occurring in some cultivated genotypes. In this study, IFC was used for the first time to characterize hazelnut pollen biology. IFC was validated via dye exclusion in microscopy and employed to (i) follow pollen hydration over time to define the best pre-hydration treatment for pollen viability evaluation; (ii) test hazelnut pollen viability and sterility on 33 cultivars grown in a collection field located in central Italy, and two wild hazelnuts. The accessions were also characterized by their amount and distribution of catkins in the tree canopy. Pollen sterility rate greatly varied among hazelnut accessions, with one main group of highly sterile cultivars and a second group, comprising wild genotypes and the remaining cultivars, producing good quality pollen. The results support the hypothesis of recurring reciprocal translocation events in Corylus avellana cultivars, leading to the observed gametic semi-sterility. The measured hazelnut pollen viability was also strongly influenced by pollen hydration (R [Formula: see text] = 0.83, P ≤ 0.0001) and reached its maximum at around 6 h of pre-hydration in humid chambers. Viable and dead pollen were best discriminated at around the same time of pollen pre-hydration, suggesting that high humidity levels are required for hazelnut pollen to maintain its functionality. Altogether, our results detail the value of impedance flow cytometry for high throughput phenotyping of hazelnut pollen. Further research is required to clarify the causes of pollen sterility in hazelnut, to confirm the role of reciprocal chromosome translocations and to investigate its effects on plant productivity.
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spelling pubmed-77531582020-12-23 Hazelnut Pollen Phenotyping Using Label-Free Impedance Flow Cytometry Ascari, Lorenzo Cristofori, Valerio Macrì, Federico Botta, Roberto Silvestri, Cristian De Gregorio, Tommaso Huerta, Eloy Suarez Di Berardino, Marco Kaufmann, Silvan Siniscalco, Consolata Front Plant Sci Plant Science Impedance flow cytometry (IFC) is a versatile lab-on-chip technology which enables fast and label-free analysis of pollen grains in various plant species, promising new research possibilities in agriculture and plant breeding. Hazelnut is a monoecious, anemophilous species, exhibiting sporophytic self-incompatibility. Its pollen is dispersed by wind in midwinter when temperatures are still low and relative humidity is usually high. Previous research found that hazelnut can be characterized by high degrees of pollen sterility following a reciprocal chromosome translocation occurring in some cultivated genotypes. In this study, IFC was used for the first time to characterize hazelnut pollen biology. IFC was validated via dye exclusion in microscopy and employed to (i) follow pollen hydration over time to define the best pre-hydration treatment for pollen viability evaluation; (ii) test hazelnut pollen viability and sterility on 33 cultivars grown in a collection field located in central Italy, and two wild hazelnuts. The accessions were also characterized by their amount and distribution of catkins in the tree canopy. Pollen sterility rate greatly varied among hazelnut accessions, with one main group of highly sterile cultivars and a second group, comprising wild genotypes and the remaining cultivars, producing good quality pollen. The results support the hypothesis of recurring reciprocal translocation events in Corylus avellana cultivars, leading to the observed gametic semi-sterility. The measured hazelnut pollen viability was also strongly influenced by pollen hydration (R [Formula: see text] = 0.83, P ≤ 0.0001) and reached its maximum at around 6 h of pre-hydration in humid chambers. Viable and dead pollen were best discriminated at around the same time of pollen pre-hydration, suggesting that high humidity levels are required for hazelnut pollen to maintain its functionality. Altogether, our results detail the value of impedance flow cytometry for high throughput phenotyping of hazelnut pollen. Further research is required to clarify the causes of pollen sterility in hazelnut, to confirm the role of reciprocal chromosome translocations and to investigate its effects on plant productivity. Frontiers Media S.A. 2020-12-08 /pmc/articles/PMC7753158/ /pubmed/33370424 http://dx.doi.org/10.3389/fpls.2020.615922 Text en Copyright © 2020 Ascari, Cristofori, Macrì, Botta, Silvestri, De Gregorio, Huerta, Di Berardino, Kaufmann and Siniscalco. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Ascari, Lorenzo
Cristofori, Valerio
Macrì, Federico
Botta, Roberto
Silvestri, Cristian
De Gregorio, Tommaso
Huerta, Eloy Suarez
Di Berardino, Marco
Kaufmann, Silvan
Siniscalco, Consolata
Hazelnut Pollen Phenotyping Using Label-Free Impedance Flow Cytometry
title Hazelnut Pollen Phenotyping Using Label-Free Impedance Flow Cytometry
title_full Hazelnut Pollen Phenotyping Using Label-Free Impedance Flow Cytometry
title_fullStr Hazelnut Pollen Phenotyping Using Label-Free Impedance Flow Cytometry
title_full_unstemmed Hazelnut Pollen Phenotyping Using Label-Free Impedance Flow Cytometry
title_short Hazelnut Pollen Phenotyping Using Label-Free Impedance Flow Cytometry
title_sort hazelnut pollen phenotyping using label-free impedance flow cytometry
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7753158/
https://www.ncbi.nlm.nih.gov/pubmed/33370424
http://dx.doi.org/10.3389/fpls.2020.615922
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