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Kohl, M.

Publications and source records attributed to Kohl, M..

2 recordsLinked to original sources

Axenic in-vitro cultivation of nineteen peat-moss (Sphagnum L.) species as a resource for basic biology, biotechnology and paludiculture

O_LIThe cultivation of Sphagnum mosses reduces CO2 emissions by rewetting drained peatlands and by substituting peat with renewable biomass. Sphagnum farming requires large volumes of founder material, which can only be supplied sustainably by axenic cultivation in bioreactors. C_LIO_LIWe established axenic in-vitro cultures from sporophytes of 19 Sphagnum species collected in Austria, Germany, Latvia, Netherlands, Russia and Sweden, namely S. angustifolium, S. balticum, S. capillifolium, S. centrale, S. compactum, S. cuspidatum, S. fallax, S. fimbriatum, S. fuscum, S. lindbergii, S. medium/divinum, S. palustre, S. papillosum, S. rubellum, S. russowii, S. squarrosum, S. subnitens, S. subfulvum, and S. warnstorfii. These species cover five of the six European Sphagnum sections, namely Acutifolia, Cuspidata, Rigida, Sphagnum and Squarrosa. C_LIO_LITheir growth was measured in axenic suspension cultures, whereas their ploidy was determined by flow cytometry and compared with the genome size of Physcomitrella patens. We identified haploid and diploid Sphagnum species, found that their cells are predominantly arrested in the G1-phase of the cell cycle, and did not find a correlation between plant productivity and ploidy. C_LIO_LIWith this collection, high-quality founder material for diverse large-scale applications but also for basic Sphagnum research is available from the International Moss Stock Center (IMSC). C_LI

plant biology

Distinct roles of parvalbumin and somatostatin interneurons in the synchronization of spike-times in the neocortex

Synchronization of precise spike-times across multiple neurons carries information about sensory stimuli. Inhibitory interneurons are suggested to promote this synchronization, but it is unclear whether distinct interneuron subtypes provide different contributions. To test this, we examined single-unit recordings from barrel cortex in vivo and used optogenetics to determine the contribution of two classes of inhibitory interneurons: parvalbumin (PV)- and somatostatin (SST)-positive interneurons to spike-timing synchronization across cortical layers. We found that PV interneurons preferentially promote the synchronization of spike-times when instantaneous firing-rates are low (<12 Hz), whereas SST interneurons preferentially promote the synchronization of spike-times when instantaneous firing-rates are high (>12 Hz). Furthermore, using a computational model, we demonstrate that these effects can be explained by PV and SST interneurons having preferential contribution to feedforward and feedback inhibition, respectively. Our findings demonstrate that distinct subtypes of inhibitory interneurons have frequency-selective roles in spatio-temporal synchronization of precise spike-times.

neuroscience