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PreviewIssue DateTitleAuthor(s)
2014Mycophenolate mofetil versus azathioprine in scleroderma-associated interstitial lung disease: results from the Australian Scleroderma Cohort StudyOwen, C.; Ngian, G.; Elford, K.; Moore, O.; Nikpour, M.; Stevens, W.; Proudman, S.; Roddy, J.; Zochling, J.; Hill, C.; Nash, P.; Sturgess, A.; Sahhar, J.; 2014 ACR/ARHP Annual Meeting (14 Nov 2014 - 19 Nov 2014 : Boston, MA)
2014Mycophenolate mofetil versus azathioprine in scleroderma-associated interstitial lung disease: results from the Australian Scleroderma Cohort StudyOwen, C.; Ngian, G.; Moore, O.; Stevens, W.; Proudman, S.; Roddy, J.; Zochling, J.; Nash, P.; Hill, C.; Sturgess, A.; Sahhar, J.; Australian Rheumatology Association 55th Annual Scientific Meeting (17 May 2014 - 20 May 2014 : Hobart, Tasmania)
2012Mycophenolate versus azathioprine for kidney transplantation: a 15-year follow-up of a randomized trialClayton, P.; McDonald, S.; Chapman, J.; Chadban, S.
2013Mycoplasma genitalium: prevalence in men presenting with urethritis to a South Australian public sexual health clinicMezzini, T.; Waddell, R.; Douglas, R.; Sadlon, T.
1984Mycoplasma pneumoniae: acute illness, antibiotics, and subsequent pulmonary functionSabato, A.R.; Martin, A.J.; Marmion, B.P.; Kok, T.W.; Cooper, D.M.
2003Mycorrhizal fungi can dominate phosphate supply to plants irrespective of growth responsesSmith, S.; Smith, F.; Jakobsen, I.
2014Mycorrhizal responses in wheat: shading decreases growth but does not lower the contribution of the fungal phosphate uptake pathwayStonor, R.; Smith, S.; Manjarrez, M.; Facelli, E.; Smith, F.
2008Mycorrhizal SymbiosisSmith, S.; Read, D.
2009Mycorrhizal symbiosis - overview and new insights into roles of arbuscular mycorrhizas in agro- and natural ecosystemsFacelli, E.; Smith, S.; Smith, F.
2003MycorrhizasSmith, F.; Smith, S.; Timonen, S.; Kroon, H.; Visser, E.
2006Mycorrhizosphere conceptTimonen, S.; Marschner, P.; Mukerji, K.; Manoharachary, C.; Singh, J.
2013MyD88 is a critical regulator of hematopoietic cell-mediated neuroprotection seen after strokeDownes, C.E.; Wong, C.H.Y.; Henley, K.J.; Guio-Aguilar, P.L.; Zhang, M.; Ates, R.; Mansell, A.; Kile, B.T.; Crack, P.J.; Arumugam, T.V.
1998Myelodysplasia in adult life: the value of an outreach nursing serviceGoodger, J.; Kulas, J.; Carney, A.; Dewan, Paddy A.; Kosmala, E.; Simpson, Donald A.
1999Myeloid DAP12-associating lectin (MDL)-1 is a cell surface receptor involved in the activation of myeloid cellsBaker, E.; Sutherland, G.; Phillips, J.; Lanier, L.
2017Myeloid neoplasms with germline DDX41 mutationCheah, J.; Hahn, C.; Hiwase, D.; Scott, H.; Brown, A.
2014Myeloma plasma cells alter the bone marrow microenvironment by stimulating the proliferation of mesenchymal stromal cellsNoll, J.; Williams, S.; Tong, C.; Wang, H.; Quach, J.; Purton, L.; Pilkington, K.; To, L.; Evdokiou, A.; Grontho, S.; Zannettino, A.
2011Myeloma-induced alloreactive T cells arising in myeloma-infiltrated bones include double-positive CD8⁺CD4⁺ T cells: evidence from myeloma-bearing mouse modelFreeman, L.; Lam, A.; Petcu, E.; Smith, R.; Salajegheh, A.; Diamond, P.; Zannettino, A.; Evdokiou, A.; Luff, J.; Wong, P.; Khalil, D.; Waterhouse, N.; Vari, F.; Rice, A.; Catley, L.; Hart, D.; Vuckovic, S.
2002MyelopathiesThompson, P.; Blumbergs, P.
2023Myeloperoxidase creates a permissive microenvironmental niche for the progression of multiple myelomaWilliams, C.M.D.; Noll, J.E.; Bradey, A.L.; Duggan, J.; Wilczek, V.J.; Masavuli, M.G.; Grubor‐Bauk, B.; Panagopoulos, R.A.; Hewett, D.R.; Mrozik, K.M.; Zannettino, A.C.W.; Vandyke, K.; Panagopoulos, V.
2018Myeloperoxidase modification of high-density lipoprotein suppresses human endothelial cell proliferation and migration via inhibition of ERK1/2 and Akt activationChen, X.; Duong, M.; Nicholls, S.; Bursill, C.