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Parasitology Today (Personal Ed.)|August 1, 1988
Immunopathophysiology of Babesia bovis and Plasmodium falciparum infectionsI G Wright, B V Goodger, I A Clark
Transactions of the Royal Society of Tropical Medicine and Hygiene|May 1, 1997
Serum creatinine levels and reactive nitrogen intermediates in children with cerebral malaria in Papua New GuineaF al-Yaman, M M Awburn, I A Clark
Lancet (London, England)|October 10, 1992
Possible central role of nitric oxide in conditions clinically similar to cerebral malariaI A Clark, K A Rockett, W B Cowden
Parasitology Today (Personal Ed.)|January 1, 1991
Proposed link between cytokines, nitric oxide and human cerebral malariaI A Clark, K A Rockett, W B Cowden
Parasite Immunology|June 3, 1999
Malaria parasite-specific Th1-like T cells simultaneously reduce parasitemia and promote diseaseC Hirunpetcharat, F Finkelman, I A Clark, et al.
International Journal for Parasitology|December 12, 1997
The biological basis of malarial diseaseI A Clark, F M al Yaman, L S Jacobson
Infection and Immunity|September 1, 1984
Production of luminol-reactive oxygen radicals during Plasmodium vinckei infectionR Stocker, N H Hunt, I A Clark, et al.
Biochimica Et Biophysica Acta|April 15, 1986
Protection of vitamin E from oxidation by increased ascorbic acid content within Plasmodium vinckei-infected erythrocytesR Stocker, N H Hunt, M J Weidemann, et al.
Immunology Letters|August 1, 1990
TNF and Plasmodium berghei ANKA-induced cerebral malariaI A Clark, S Ilschner, J D MacMicking, et al.
Transactions of the Royal Society of Tropical Medicine and Hygiene|January 18, 2005
High mobility group box 1 (HMGB1) protein: possible amplification signal in the pathogenesis of falciparum malariaL M Alleva, H Yang, K J Tracey, et al.
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