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PreviewIssue DateTitleAuthor(s)
2022Stress-Induced Volatile Emissions and Signalling in Inter-Plant CommunicationMidzi, J.; Jeffery, D.W.; Baumann, U.; Rogiers, S.; Tyerman, S.D.; Pagay, V.
2009Stress-strain properties of individual Merino wool fibres are minor contributors to variations in staple strength induced by genetic selection and nutritional manipulationThompson, A.; Hynd, P.
2000Striate mosaicCroft, Barry J; Randles, John Wesley
2015Strigolactone inhibition of branching independent of polar auxin transportBrewer, P.; Dun, E.; Gui, R.; Mason, M.; Beveridge, C.
2023Strigolactones and shoot branching: what is the real hormone and how does it work?Dun, E.A.; Brewer, P.B.; Gillam, E.M.J.; Beveridge, C.A.
2012Strigolactones suppress adventitious rooting in arabidopsis and peaRasmussen, A.; Mason, M.G.; de Cuyper, C.; Brewer, P.B.; Herold, S.; Agusti, J.; Geelen, D.; Greb, T.; Goormachtig, S.; Beeckman, T.; Beveridge, C.A.
2021Strigolactones, how are they synthesized to regulate plant growth and development?Yoneyama, K.; Brewer, P.B.
2008Strong constraints to independent nesting in a facultatively social bee: quantifying the effects of enemies-at-the-nestZammit, J.; Hogendoorn, K.; Schwarz, M.
2014Strong genetic structure corresponds to small-scale geographic breaks in the Australian alpine grasshopper Kosciuscola tristisSlatyer, R.A.; Nash, M.A.; Miller, A.D.; Endo, Y.; Umbers, K.D.L.; Hoffmann, A.A.
2019Structural analysis and biological activity of cell wall polysaccharides extracted from Panax ginseng marcLi, J.; Wang, D.; Xing, X.; Cheng, T.J.R.; Liang, P.H.; Bulone, V.; Park, J.H.; Hsieh, Y.S.Y.
2013Structural analysis and insights into the glycon specificity of the rice GH1 Os7BGlu26 β-D-mannosidaseTankrathok, A.; Iglesias-Ferna, J.; Luang, S.; Robinson, R.; Kimura, A.; Rovira, C.; Hrmova, M.; Cairns, J.
2011Structural and functional analyses of PpENA1 provide insights into cation binding by type IID P-type ATPases in lower plants and fungiDrew, D.; Hrmova, M.; Lunde, C.; Jacobs, A.; Tester, M.; Fincher, G.
2002Structural basis for broad substrate specificity in higher plant beta-D-glucan glucohydrolasesHrmova, M.; De Gori, R.; Smith, B.; Fairweather, J.; Driguez, H.; Varghese, J.; Fincher, G.
2017Structural basis of the permeation function of plant aquaporinsLuang, S.; Hrmova, M.; Chaumont, F.; Tyerman, S.
2022Structural bioinformatics and biophysical approaches for understanding the plant responses to biotic and abiotic stressesSperotto, R.A.; Hrmova, M.; Graether, S.P.; Timmers, L.F.S.M.
2022Structural characterisation of a MAPR-related archaeal cytochrome b(5M) proteinTeakel, S.; Marama, M.; Aragao, D.; Tsimbalyuk, S.; Mackie, E.R.R.; da Costa, T.P.S.; Forwood, J.K.; Cahill, M.A.
2020Structural characterization of the Pet c 1.0201 PR-10 protein isolated from roots of Petroselinum crispum (Mill.) FussStratilova, B.; Rehulka, P.; Garajova, S.; Rehulkova, H.; Stratilova, E.; Hrmova, M.; Kozmon, S.
2023Structural insight into the Scribble PDZ domains interaction with the oncogenic Human T-cell lymphotrophic virus-1 (HTLV-1) Tax1 PBMJavorsky, A.; Maddumage, J.C.; Mackie, E.R.R.; Soares da Costa, T.P.; Humbert, P.O.; Kvansakul, M.
1997Structural organization of the mouse and human GALR1 Galanin receptor genes (Galnr and GALNR) and chromosomal localization of the mouse geneJacoby, A.; Webb, G.; Liu, M.; Kofler, B.; Hort, Y.; Fathi, Z.; Bottema, C.; Shine, J.; Iismaa, T.
2005Structural rationale for low-nanomolar binding of transition state mimics to a family GH3 β-D-glucan glucohydrolase from barleyHrmova, M.; Streltsov, V.; Smith, B.; Vasella, A.; Varghese, J.; Fincher, G.