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@article{6f955e05b8294761acf7431486eb205f,
title = "Further acquaintance with the diversity of cyanobacteria adaptively expressing red-shifted chlorophylls: Descriptive information on twelve new cultured strains, extended with proposals of Kovacikia broсelensis sp. nov. and Leptolyngbya fluviusnevae sp. nov. (Leptolyngbyales, Cyanobacteriota)",
abstract = "Abstract: The phylum Cyanophyta (Cyanobacteria; recently renamed to Cyanobacteriota) consists of the classes Cyanophyceae and Vampirovibriophyceae; in terms of the nomenclature of prokaryotes,they are Oxyphotobacteria and Vampirovibrionia. These taxa correspondingly represent photosynthetic and non-photosynthetic cyanobacteria. The members of former class generally rely on the Mn4CaO5-cluster of PSII (the unique photoenzyme converting molecular water into triplet dioxygen). Global oxygenic photosynthesis is mediated by white light resonating chlorophyll a, which has a long wavelength (ca. 700 nm) absorbance peak. At the same time, a minor group of cyanobacterial strains assimilates, either adaptively or permanently, far-red (> 700 nm) light quanta absorbed by “red-shifted” chlorophylls d and f. Improving the coverage of strains capable to produce such chlorophylls not only helps better evaluate the environmental diversity of cyanobacteria, and enrich their taxonomy; it also provides potential models for in-depth research on the topology and role(s) of red-shifted chlorophylls in oxygenic photosynthetic apparatus. Resulting from present study, in addition to already known 43 cultured strains adaptively expressing chlorophylls d and f under far-red light, 12 new strains were obtained from different loci and environments of Europe and Antarctica. Phylogenomic analysis of these strains allowed us to classify them to the orders Nostocales, Coleofasciculales, Nodosilineales/Oculatellales (provisionally), and Leptolyngbyales. Except furnishing taxonomic descriptions of all these strains, a polyphasic approach applied to some of them allowed us to propose, under the International Code of Nomenclature for algae, fungi, and plants (ICN) provisions, two new species Kovacikia brocelensis sp. nov. and Leptolyngbya fluviusnevae sp. nov. During the course of our work we encountered taxonomic difficulties with “Leptolyngbya-like” strains that forced us to delve into problematic rearrangement of this phylogeneticallyheterogeneous group into monophyletic taxa.",
author = "Аверина, {Светлана Геннадиевна} and Сенатская, {Екатерина Владимировна} and Полякова, {Елена Юрьевна} and Лыхолай, {Анна Николаевна} and Пиневич, {Александр Васильевич}",
year = "2026",
month = jan,
day = "15",
doi = "10.1127/nova_hedwigia/1170",
language = "English",
journal = "Nova Hedwigia",
issn = "0029-5035",
publisher = "Gebruder Borntraeger Verlagsbuchhandlung",

}

RIS

TY - JOUR

T1 - Further acquaintance with the diversity of cyanobacteria adaptively expressing red-shifted chlorophylls: Descriptive information on twelve new cultured strains, extended with proposals of Kovacikia broсelensis sp. nov. and Leptolyngbya fluviusnevae sp. nov. (Leptolyngbyales, Cyanobacteriota)

AU - Аверина, Светлана Геннадиевна

AU - Сенатская, Екатерина Владимировна

AU - Полякова, Елена Юрьевна

AU - Лыхолай, Анна Николаевна

AU - Пиневич, Александр Васильевич

PY - 2026/1/15

Y1 - 2026/1/15

N2 - Abstract: The phylum Cyanophyta (Cyanobacteria; recently renamed to Cyanobacteriota) consists of the classes Cyanophyceae and Vampirovibriophyceae; in terms of the nomenclature of prokaryotes,they are Oxyphotobacteria and Vampirovibrionia. These taxa correspondingly represent photosynthetic and non-photosynthetic cyanobacteria. The members of former class generally rely on the Mn4CaO5-cluster of PSII (the unique photoenzyme converting molecular water into triplet dioxygen). Global oxygenic photosynthesis is mediated by white light resonating chlorophyll a, which has a long wavelength (ca. 700 nm) absorbance peak. At the same time, a minor group of cyanobacterial strains assimilates, either adaptively or permanently, far-red (> 700 nm) light quanta absorbed by “red-shifted” chlorophylls d and f. Improving the coverage of strains capable to produce such chlorophylls not only helps better evaluate the environmental diversity of cyanobacteria, and enrich their taxonomy; it also provides potential models for in-depth research on the topology and role(s) of red-shifted chlorophylls in oxygenic photosynthetic apparatus. Resulting from present study, in addition to already known 43 cultured strains adaptively expressing chlorophylls d and f under far-red light, 12 new strains were obtained from different loci and environments of Europe and Antarctica. Phylogenomic analysis of these strains allowed us to classify them to the orders Nostocales, Coleofasciculales, Nodosilineales/Oculatellales (provisionally), and Leptolyngbyales. Except furnishing taxonomic descriptions of all these strains, a polyphasic approach applied to some of them allowed us to propose, under the International Code of Nomenclature for algae, fungi, and plants (ICN) provisions, two new species Kovacikia brocelensis sp. nov. and Leptolyngbya fluviusnevae sp. nov. During the course of our work we encountered taxonomic difficulties with “Leptolyngbya-like” strains that forced us to delve into problematic rearrangement of this phylogeneticallyheterogeneous group into monophyletic taxa.

AB - Abstract: The phylum Cyanophyta (Cyanobacteria; recently renamed to Cyanobacteriota) consists of the classes Cyanophyceae and Vampirovibriophyceae; in terms of the nomenclature of prokaryotes,they are Oxyphotobacteria and Vampirovibrionia. These taxa correspondingly represent photosynthetic and non-photosynthetic cyanobacteria. The members of former class generally rely on the Mn4CaO5-cluster of PSII (the unique photoenzyme converting molecular water into triplet dioxygen). Global oxygenic photosynthesis is mediated by white light resonating chlorophyll a, which has a long wavelength (ca. 700 nm) absorbance peak. At the same time, a minor group of cyanobacterial strains assimilates, either adaptively or permanently, far-red (> 700 nm) light quanta absorbed by “red-shifted” chlorophylls d and f. Improving the coverage of strains capable to produce such chlorophylls not only helps better evaluate the environmental diversity of cyanobacteria, and enrich their taxonomy; it also provides potential models for in-depth research on the topology and role(s) of red-shifted chlorophylls in oxygenic photosynthetic apparatus. Resulting from present study, in addition to already known 43 cultured strains adaptively expressing chlorophylls d and f under far-red light, 12 new strains were obtained from different loci and environments of Europe and Antarctica. Phylogenomic analysis of these strains allowed us to classify them to the orders Nostocales, Coleofasciculales, Nodosilineales/Oculatellales (provisionally), and Leptolyngbyales. Except furnishing taxonomic descriptions of all these strains, a polyphasic approach applied to some of them allowed us to propose, under the International Code of Nomenclature for algae, fungi, and plants (ICN) provisions, two new species Kovacikia brocelensis sp. nov. and Leptolyngbya fluviusnevae sp. nov. During the course of our work we encountered taxonomic difficulties with “Leptolyngbya-like” strains that forced us to delve into problematic rearrangement of this phylogeneticallyheterogeneous group into monophyletic taxa.

UR - https://www.mendeley.com/catalogue/48088734-1954-32dc-8c05-f859f8a8bc44/

U2 - 10.1127/nova_hedwigia/1170

DO - 10.1127/nova_hedwigia/1170

M3 - Article

JO - Nova Hedwigia

JF - Nova Hedwigia

SN - 0029-5035

ER -

ID: 149080211