Sulfur Stable Isotope Discrimination in Rice: A Sulfur Isotope Mass Balance Study
Viviana Cavallaro, Moez Maghrebi, Mariachiara Caschetto, Gian Attilio Sacchi, Fabio Francesco Nocito
Abstract
Viviana Cavallaro, Moez Maghrebi, Mariachiara Caschetto, Gian Attilio Sacchi, Fabio Francesco Nocito
Abstract
The use of sulfur (S) stable isotopes to study S metabolism in plants is still limited by the relatively small number of studies. It is generally accepted that less S stable isotope discrimination occurs during sulfate (SO 4 2– ) uptake. However, S metabolism and allocation are expected to produce separations of S stable isotopes among the different plant S pools and organs. In this study, we measured the S isotope composition of the main S pools of rice plants grown under different SO 4 2– availabilities in appropriate closed and open hydroponic-plant systems. The main results indicate that fractionation against 34 S occurred during SO 4 2– uptake. Fractionation was dependent on the amount of residual SO 4 2– in the solution, showing a biphasic behavior related to the relative expression of two SO 4 2– transporter genes ( OsSULTR1;1 and OsSULTR1;2 ) in the roots. S isotope separations among S pools and organs were also observed as the result of substantial S isotope fractionations and mixing effects occurring during SO 4 2– assimilation and plant S partitioning. Since the S stable isotope separations conserve the memory of the physiological and metabolic activities that determined them, we here underline the potential of the 32 S/ 34 S analysis for the detailed characterization of the metabolic and molecular processes involved in plant S nutrition and homeostasis.
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The use of sulfur (S) stable isotopes to study S metabolism in plants is still limited by the relatively small number of studies. It is generally accepted that less S stable isotope discrimination occurs during sulfate (SO 4 2– ) uptake. However, S metabolism and allocation are expected to produce separations of S stable isotopes among the different plant S pools and organs. In this study, we measured the S isotope composition of the main S pools of rice plants grown under different SO 4 2– availabilities in appropriate closed and open hydroponic-plant systems. The main results indicate that fractionation against 34 S occurred during SO 4 2– uptake. Fractionation was dependent on the amount of residual SO 4 2– in the solution, showing a biphasic behavior related to the relative expression of two SO 4 2– transporter genes ( OsSULTR1;1 and OsSULTR1;2 ) in the roots. S isotope separations among S pools and organs were also observed as the result of substantial S isotope fractionations and mixing effects occurring during SO 4 2– assimilation and plant S partitioning. Since the S stable isotope separations conserve the memory of the physiological and metabolic activities that determined them, we here underline the potential of the 32 S/ 34 S analysis for the detailed characterization of the metabolic and molecular processes involved in plant S nutrition and homeostasis.
Key concepts: Isotope, Sulfur, δ34S, Stable isotope ratio, Fractionation, Isotope fractionation, Isotope analysis, Chemistry