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Biomedical subjects

I A Clark

Publications and source records attributed to I A Clark.

At least 19 recordsLinked to original sources

High mobility group box 1 (HMGB1) protein: possible amplification signal in the pathogenesis of falciparum malaria.

High mobility group box 1 (HMGB1) protein, a DNA-binding protein that can also act as a pro-inflammatory cytokine if released from cells, is an important amplification signal in various forms of inflammation. The concentration of HMGB1 in serum taken at admission was increased in falciparum malaria in sixteen African children, more so in fatal cases than in those who subsequently recovered (P<0.001). Serum from both non-fatal (P=0.0048) and fatal (P<0.001) cases contained significantly more circulating HMGB1 than did serum from healthy Caucasian adults. These data provide an additional argument that malaria is fundamentally a systemic inflammatory state. In keeping with its developing role in sepsis, HMGB1 may enhance and prolong the inflammatory processes, and thus illness, in malaria.

Child↗

Heterologous immunity revisited.

Heterologous immunity, or protection by one invading organism against another across phylogenetic divides, has been recognised for decades. It was initially thought to operate largely through enhancement of phagocytosis, but this explanation became untenable when it was realised it worked extremely well against intraerythrocytic protozoa and killed them while they were free in the circulation. Clearly a soluble mediator was called for. This review summarises the logic that arose from this observation, which led to a wider appreciation of the roles of pro-inflammatory cytokines, and then nitric oxide, in the host's response against invaders, as well as the ability of these mediators to harm the host itself if they are generated too enthusiastically. This has led to a discernable pattern across heterologous immunity as a whole, and its lessons influence a range of areas, including vaccine development.

Animals↗

Pathogenesis of malaria.

As the mortality rate of 20-30% for severe falciparum malaria under even the best clinical conditions testifies, access to antimalarial drugs is not sufficient to prevent an appreciable mortality from this disease. Understanding the cause of death at a cellular level is essential if additional rational treatments are to be developed. Here, Ian Clark and Louis Schofield discuss recent work presented at the Molecular Approaches to Malaria conference, Lorne, Australia, 2-5 February 2000, that updates the cytokine-based concept of malarial disease.

Adult↗

Why is the pathology of falciparum worse than that of vivax malaria?

Here, Ian Clark and Bill Cowden summarize new evidence suggesting that nitric oxide (NO) generated by inducible NO synthase (iNOS) provides a functional link between the previously competing approaches to malarial disease pathogenesis: ischaemic hypoxia and NO. When combined with the newly recognized roles of iNOS in renal and pulmonary function and glucose metabolism, synergy between inflammatory cytokines and hypoxia in iNOS induction provides a framework to help explain, at a molecular level, the differences in the pathology seen in falciparum and vivax malaria. Thus sequestration, through localized hypoxia, might contribute to pathology by enhancing cytokine-induced iNOS. Generalized hypoxia might have the same effect.

Animals↗

Malaria parasite-specific Th1-like T cells simultaneously reduce parasitemia and promote disease.

CD4+ T cells have been implicated in immunity to the blood stages of malaria and cytokines associated with both monocyte and T cell activation have been implicated in disease. To determine whether specific T cells capable of inhibiting parasite growth can also mediate pathology we have transfused populations of Plasmodium berghei-specific T cells into normal and immunodeficient naive mice. We observed that they could inhibit parasite growth but were unable to save the animals which exhibited significantly greater anaemia and weight loss than control infected animals receiving either no T cells or T cells specific for ovalbumin. T cell-dependent tomour necrosis factor (TNF)alpha was a critical component in both parasite killing and disease promotion. Experiments with blocking antibodies demonstrated that all T-cell mediated antiparasitic immunity and all T-cell mediated weight loss was TNF-dependent. Blocking TNF-alpha in mice that received parasite-specific T cells prolonged the survival of the mice. Nitric oxide demonstrated no antiparasite effect, but was involved in the regulation of T-cell mediated weight loss. The data thus show that while parasite-specific CD4+ T cells can significantly limit parasite growth, such an effect need not be beneficial to the host, and that TNF-alpha and nitric oxide are critical effector molecules operating downstream of parasite-specific T cells in both immunity and disease.

Animals↗

Do babesiosis and malaria share a common disease process?

Clinical Confusion between human babesiosis and malaria is often reported in the literature. Headache, fever, chills, nausea, vomiting, myalgia, altered mental status, disseminated intravascular coagulation, anaemia with dyserythropoiesis, hypotension, respiratory distress, and renal insufficiency are common to both diseases. This remarkable similarity is not restricted to the human host. In the mouse, for example, the histological changes wrought by fatal malaria (Plasmodium vinckei) and babesiosis (Babesia rhodaini) are identical, and parasites of both genera cross-protect. Malarial disease pathogenesis is now generally associated with excessive production of pro-inflammatory cytokines , such as tumour necrosis factor. While this concept has not yet been examined in babesiosis, indirect evidence arises from noting the parasite density at which illness occurs in primary infections caused by either organism. Naive mice tolerate high loads of malarial or babesial parasites before they become ill, and are also tolerant to endotoxicity, which is mediated by these same cytokines. In contrast, humans require very much smaller loads of Plasmodium or Babesia spp. before becoming ill, and likewise are very sensitive to endotoxin, the harmful effects of which are mediated by the pro-inflammatory cytokines. For these reasons, as discussed in this review, the diseases caused by these two genera of intra-erythrocytic protozoan parasites will probably prove to be conceptually identical.

Animals↗

The biological basis of malarial disease.

In this review we summarise the arguments that inflammatory cytokines, triggered by material released from the parasite at schizogony (malarial toxin), might induce the illness and pathology seen in malaria. These pro-inflammatory cytokines can generate inducible nitric oxide synthase and cause nitric oxide to be released, as can low concentrations of malarial toxin itself provided interferon-gamma, which has only low activity in the absence of malarial toxin, is present. We suggest here that recently described hypermetabolic functions of these mediators provide a much more plausible explanation for malarial hyperlactataemia and hypoglycaemia, the chief prognostic indicators in falciparum malaria, than does hypoxia secondary to mechanical blockage of vessels by sequestering parasites, which is the dominant current theory. We also review the arguments that rationalise, through these mediators, the reversibility of the coma of cerebral malaria. Although not yet tested at a cellular level, the proposal that nitric oxide generated in cerebral vascular walls contributes to this coma continues to gather indirect support. In addition, new evidence incriminating nitric oxide in the mechanism of tolerance to endotoxin rationalises the raised nitric oxide generation seen in malarial tolerance.

Animals↗

Does malarial tolerance, through nitric oxide, explain the low incidence of autoimmune disease in tropical Africa?

Autoimmune disease is generally rare in tropical rural populations. Plasma concentrations of nitrite plus nitrate (reactive nitrogen intermediates), reflecting high nitric-oxide production somewhere in the body, can be high in patients who have cerebral malaria, but even higher in symptom-free parasitised individuals, who are termed malaria-tolerant. We propose that the nitric oxide causing high serum levels of reactive nitrogen intermediates in malaria-tolerant individuals is generated in macrophages during the establishment and maintenance of malarial tolerance, and makes autoimmune disease rare in many tropical rural populations by minimising proliferation of autoreactive T cells. Conversely, innately low levels of nitric-oxide generation in these populations, selected by malarial disease in tropical areas, could rationalise their high frequency of autoimmune disease and hypertension when living in western societies.

Africa↗

In vitro induction of nitric oxide by an extract of Plasmodium falciparum.

Malarial illness and pathology is generally accepted to be caused by material released when the infected red cells burst at schizogony. The released material has been partially purified and shown to stimulate macrophages to make TNF. We have extended this work to show that these same preparations, isolated from parasitized erythrocytes, induce the mouse macrophage cell line RAW 264.7 to produce inducible nitric oxide synthase and release nitric oxide. By using cytokine-specific antisera we have found that this induction is independent of TNF and IL-1 alpha and partly independent of IL-1 beta.

Animals↗