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Biomedical subjects

Richard T Johnson

Publications and source records attributed to Richard T Johnson.

At least 19 recordsLinked to original sources

Prion diseases.

Prion diseases are degenerative disorders of the nervous system caused by transmissible particles that contain a pathogenic isoform of the prion protein, a normal constituent of cell membranes. The most common human prion disease is Creutzfeldt-Jakob disease (CJD). Most cases are sporadic with unknown mode of transmission, 10-15% of cases are inherited, and a small number have been transmitted by medical procedures. The spread of human prion diseases through consumption of infected material has been implicated historically in kuru and recently in variant CJD. Animal prion diseases (scrapie of sheep, transmissible mink encephalopathy, chronic wasting disease of cervids, and bovine spongiform encephalopathy) all seem to be laterally transmitted by contact with infected animals or by consumption of infected feed. The different modes of transmission of different prion diseases, the unpredictable species barriers, the variable distribution of infectivity in tissues, and strain variations found in some diseases all make risk assessment and predictions of future events difficult.

Animal Diseases↗

West Nile virus: pathogenesis and therapeutic options.

West Nile virus, a member of the family Flaviviridae, has spread throughout the United States. With more than 9000 cases and 200 deaths in 2003, West Nile virus has become the most common cause of viral encephalitis in several states. West Nile virus encephalitis is a zoonosis. The life cycle of the virus includes mainly birds as hosts and mosquitoes as vectors. Humans are accidental hosts, insufficient to support the life cycle of the virus because of low-grade, transient viremia. However, human-tohuman transmission through blood, organ transplantation, and lactation has been documented. The frequency of severe neurologic disease in the current epidemic suggests a more neurovirulent strain of virus than the one classically associated with West Nile fever. Several neurologic manifestations have been described, but the most characteristic presentation is encephalitis with weakness. Magnetic resonance imaging scans may be normal initially, but a characteristic pattern of involvement of deep gray matter nuclei can be recognized. Although results of polymerase chain reaction may be positive in the cerebrospinal fluid early in the course of the disease, diagnosis is based on serologic tests. Possible cross-reactivity with other members of the genus flavivirus mandates caution when serologic testing results are interpreted. Thus far, no therapeutic intervention has shown consistent clinical efficacy in West Nile virus disease. Several approaches, including interferon-alpha2b and immunoglobulin with high titer against West Nile virus, offer promise based on animal models and limited clinical experience. New drugs with in vitro activity are being investigated, and a vaccine is being developed.

Animals↗

Emerging viral infections of the nervous system.

New viral infections of the nervous system have been appearing with great regularity. Some result from the evolution of new agents and others from the entry of viruses into new hosts or environments. The emergence of neurovirulent enteroviruses causing a paralytic poliomyelitis syndrome and rhomboencephalitis represent the evolution of new human viruses. Most emerging viral infections represent movement of an agent into new geographic areas or across species barriers. The transport of neurovirulent strains of West Nile virus into the Western Hemisphere and the penetration of Nipah virus, a newly recognized paramyxovirus, across species barriers from bat to pig to man are examples that are highlighted in this review. The burgeoning human population and the speed and frequency of travel favor the evolution, preservation, and spread of new viral agents.

Animals↗

Hemorrhagic fever viruses as biological weapons: medical and public health management.

OBJECTIVE: To develop consensus-based recommendations for measures to be taken by medical and public health professionals if hemorrhagic fever viruses (HFVs) are used as biological weapons against a civilian population. PARTICIPANTS: The Working Group on Civilian Biodefense included 26 representatives from academic medical centers, public health, military services, governmental agencies, and other emergency management institutions. EVIDENCE: MEDLINE was searched from January 1966 to January 2002. Retrieved references, relevant material published prior to 1966, and additional sources identified by participants were reviewed. CONSENSUS PROCESS: Three formal drafts of the statement that synthesized information obtained in the evidence-gathering process were reviewed by the working group. Each draft incorporated comments and judgments of the members. All members approved the final draft. CONCLUSIONS: Weapons disseminating a number of HFVs could cause an outbreak of an undifferentiated febrile illness 2 to 21 days later, associated with clinical manifestations that could include rash, hemorrhagic diathesis, and shock. The mode of transmission and clinical course would vary depending on the specific pathogen. Diagnosis may be delayed given clinicians' unfamiliarity with these diseases, heterogeneous clinical presentation within an infected cohort, and lack of widely available diagnostic tests. Initiation of ribavirin therapy in the early phases of illness may be useful in treatment of some of these viruses, although extensive experience is lacking. There are no licensed vaccines to treat the diseases caused by HFVs.

Aerosols↗

West Nile virus encephalitis in the United States.

West Nile virus appeared in New York City in 1999 and has subsequently spread over the eastern United States. The mode of transport across the Atlantic Ocean is unknown. During the past decade, encephalitis has been a more prominent feature of West Nile virus infection in Europe, the Middle East, and the United States, suggesting the emergence of more neurovirulent strains. The rapid spread of the virus and more serious disease caused by the virus have spurred vaccine development.

Animals↗