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Cell water relations \nin bryophytes essentially are the same as those of other plant \ncells. Different adaptive types of \nbryophytes and higher plant cells respond similarly to water \ndeficit. Therefore bryophytes are ideal \nmodel plants to study the photosynthetic activity under water \nstress and the physiological basis of \ndesiccation tolerance. Sphagnum species growing in a constantly \nwet environment with their effective \nwater holding morphology successfully avoid full desiccation. \nPhotosynthetic activity, photoprotective \nheat dissipation mechanisms of the desiccation-intolerant \nSphagnum angustifolium were studied \nduring desiccation and subsequent rehydration both in light and \ndark, and after DTT-treatment and \nABA-hardening. CO2-fixation in S. angustifolium and higher plant \ncells responded similarly to water \ndeficit caused by natural or controlled drying. Fv/Fm and PSII \nwere generally higher in ABAhardened plants under intensive \nwater stress (below 50% of RWC). ABA-hardening improved \nrecovery of PSII activity upon rehydration, and it resulted in \nan effective protection of PSII activity \nagainst light stress. The mechanisms activating upon ABA-\nhardening could be protected the operation \nof PSII against of light stress as well. The activity of PSI was \nless sensitive to water stress and light \nstress, and it was hardly influenced by exogenous ABA. \nSeasonality could modify the appearance of \nABA effect. In the course of slow desiccation in dark and light \nincreased thermal energy dissipation \nwas detected. NPQ in S. angustifolium – not like in DT \nbryophytes- saturated with increasing \nirradiance. During desiccation NPQ did not change until 50% of \nRWC in ABA-hardened plants, while \nit increased in control plants. Unlike Atrichum, increased \ndesiccation tolerance was not accompanied \nby increased NPQ and decreased PS2 efficiency. ABA-hardened \nplants during desiccation in dark \nshowed increased NPQ. A major DTT-sensitive and a DTT-\ninsensitive NPQ component were detected \nduring desiccation both in light and dark. On the base of \ntesting F0 quenching during desiccation in the \ndark the presence of a desiccation-induced NPQ has not confirmed \nyet. Photosynthetic capacity was \nstill retained after prolonged darkness, and subsequently the \ninduction of photosynthetic activity was \nimmediate.\nKeywords: photosynthetic activity, photoprotective mechanisms, \ndesiccation, ABA, Sphagnum\nThis work was supported by TAMOP-4.2.2. 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