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Biomedical subjects

David E Griffith

Publications and source records attributed to David E Griffith.

16 recordsLinked to original sources

Vimentin expressed on Mycobacterium tuberculosis-infected human monocytes is involved in binding to the NKp46 receptor.

We previously showed that human NK cells used the NKp46 receptor to lyse Mycobacterium tuberculosis H37Ra-infected monocytes. To identify ligands on H37Ra-infected human mononuclear phagocytes, we used anti-NKp46 to immunoprecipitate NKp46 from NK cells bound to its ligand(s) on H37Ra-infected monocytes. Mass spectrometry analysis identified a 57-kDa molecule, vimentin, as a putative ligand for NKp46. Vimentin expression was significantly up-regulated on the surface of infected monocytes, compared with uninfected cells, and this was confirmed by fluorescence microscopy. Anti-vimentin antiserum inhibited NK cell lysis of infected monocytes, whereas antiserum to actin, another filamentous protein, did not. CHO-K1 cells transfected with a vimentin construct were lysed much more efficiently by NK cells than cells transfected with a control plasmid. This lysis was inhibited by mAb-mediated masking of NKp46 (on NK cells) or vimentin (on infected monocytes). ELISA and Far Western blotting showed that recombinant vimentin bound to a NKp46 fusion protein. These results indicate that vimentin is involved in binding of NKp46 to M. tuberculosis H37Ra-infected mononuclear phagocytes.

Animals↗

Clinical and molecular analysis of macrolide resistance in Mycobacterium avium complex lung disease.

RATIONALE: The clinical features and outcome of macrolide-resistant Mycobacterium avium complex (MAC) lung disease are not known. OBJECTIVES: Characterize patients, treatment, and isolates in macrolide-resistant MAC lung disease. METHODS: Retrospective chart review, susceptibility testing, molecular fingerprinting, and DNA sequence analyses of resistant MAC isolates. MEASUREMENTS AND MAIN RESULTS: We identified 51 patients over a 15-yr period with clarithromycin-resistant MAC (minimum inhibitory concentration (MIC)>or=32 microg/ml) lung disease at a single referral center. Twenty-four (47%) patients had nodular disease with bronchiectasis and 27 (53%) had upper lobe cavitary disease. Most patients (77%) had M. intracellulare. Sequencing of the 23S r-RNA gene showed 49 of 51 isolates (96%) with the expected mutation in adenine 2058 or 2059. Risk factors for resistance included macrolide monotherapy or combination with a quinolone only (39/51 or 76%). Macrolide resistance developed in 12 of 303 (4.0%) patients started on the American Thoracic Society-recommended two companion drugs, with no risk difference in clarithromycin versus azithromycin and daily versus intermittent therapy. Sputum conversion with macrolide-resistant MAC occurred in 11 of 14 (79%) patients who received more than 6 mo of injectable aminoglycoside therapy and lung resection, compared with 2 of 37 (5%) who did not. The 1-yr mortality in patients who remained culture positive was 34% (13/38) compared with 0% (0/13) of patients who became culture negative (converted). CONCLUSIONS: Macrolide resistance rarely occurs in patients also receiving ethambutol and a rifamycin. Macrolide-resistant MAC lung disease requires aggressive drug and surgical therapy for cure.

Aged↗

Factors related to response to intermittent treatment of Mycobacterium avium complex lung disease.

RATIONALE: Mycobacterium avium complex pulmonary disease (MAC-PD) is associated with substantial morbidity, and standard daily multidrug therapy is difficult to tolerate. OBJECTIVES: To characterize response to a three-times-weekly (TIW) regimen of clarithromycin, ethambutol, and rifampin. METHODS: A 1-yr prospective noncomparative trial of TIW treatment was conducted during 2000-2003 in 17 U.S. cities. Participants were 91 HIV-negative adults, diagnosed with moderate to severe MAC-PD, who originally participated in a trial of an inhaled IFN-gamma treatment. Improvement in sputum culture, high-resolution computed tomography (HRCT), and symptoms were assessed. RESULTS: Treatment response rates (and median response times) were 44% (2 mo or longer) for culture, 60% (5.5-11.5 mo) for HRCT, and 53% (8.5 mo) for symptoms. Having noncavitary, compared with cavitary, disease increased culture response by 4.0 times (95% confidence interval [CI], 1.7-9.2) and HRCT response by 4.9 times (95% CI, 1.9-13.0). Culture response was 1.5 times (95% CI, 1.1-2.2) higher for older subjects and 2.2 times (95% CI, 1.0-4.7) higher for previously untreated subjects. Being smear-negative increased culture response by 2.3 times (95% CI, 1.1-5.2) but decreased HRCT response by 4.4 times (95% CI, 1.7-11.5). Increasing ethambutol use by 5 mo increased culture response by 1.5 times (95% CI, 1.0-2.1) but decreased symptom response. Not having chronic obstructive pulmonary disease, bronchiectasis, or poor lung function increased symptom response by 1.9 to 3.9 times. CONCLUSIONS: TIW therapy was less effective for MAC-PD patients with cavitary disease and a history of chronic obstructive pulmonary disease, bronchiectasis, or previous treatment for MAC-PD. Further research is needed to study the long-term outcomes of TIW treatment.

Aged↗

Role of NK cell-activating receptors and their ligands in the lysis of mononuclear phagocytes infected with an intracellular bacterium.

We studied the role of NK cell-activating receptors and their ligands in the lysis of mononuclear phagocytes infected with the intracellular pathogen Mycobacterium tuberculosis. Expression of the activating receptors NKp30, NKp46, and NKG2D were enhanced on NK cells by exposure to M. tuberculosis-infected monocytes, whereas expression of DNAX accessory molecule-1 and 2B4 was not. Anti-NKG2D and anti-NKp46 inhibited NK cell lysis of M. tuberculosis-infected monocytes, but Abs to NKp30, DNAX accessory molecule-1, and 2B4 had no effect. Infection of monocytes up-regulated expression of the NKG2D ligand, UL-16 binding protein (ULBP)1, but not expression of ULBP2, ULBP3, or MHC class I-related chain A or chain B. Up-regulation of ULBP1 on infected monocytes was dependent on TLR2, and anti-ULBP1 abrogated NK cell lysis of infected monocytes. The dominant roles of NKp46, NKG2D, and ULBP1 were confirmed for NK cell lysis of M. tuberculosis-infected alveolar macrophages. We conclude that NKp46 and NKG2D are the principal receptors involved in lysis of M. tuberculosis-infected mononuclear phagocytes, and that ULBP1 on infected cells is the major ligand for NKG2D. Furthermore, TLR2 contributes to up-regulation of ULBP1 expression.

Carrier Proteins↗

Ethambutol ocular toxicity in treatment regimens for Mycobacterium avium complex lung disease.

Ethambutol (EMB) is an important component of multidrug treatment regimens for Mycobacterium avium complex lung disease. Ocular toxicity is the most important potential EMB toxicity, especially in the elderly population with M. avium complex lung disease. Two hundred twenty-nine patients with M. avium complex lung disease, 55% women and 53% with nodular/bronchiectatic disease, received a mean of 16.1 +/- 10.8 months of multidrug therapy that included EMB. Fifty patients (22%) were known to have preexisting ocular disease. While on EMB, 97 (42%) patients consulted an opthalmologist and 24 (10%) stopped EMB at least temporarily. Eight of 139 patients (6%) on daily therapy were diagnosed with EMB ocular toxicity, whereas 0 of 90 patients on intermittent therapy had EMB ocular toxicity (p = 0.05). All patients with EMB ocular toxicity developed symptoms between outpatient clinic appointments; none were diagnosed with routine visual acuity and color vision testing. All patients with EMB ocular disease returned to baseline ocular status after discontinuation of EMB. Intermittent EBM administration was associated with less ocular toxicity than daily EMB administration in this patient population.

Aged↗

Thrice-weekly clarithromycin-containing regimen for treatment of Mycobacterium kansasii lung disease: results of a preliminary study.

We initiated a prospective trial of an intermittent clarithromycin-containing regimen for the treatment of patients with Mycobacterium kansasii lung disease. Eighteen patients (10 men and 8 women) with M. kansasii lung disease received a regimen consisting of 500-1000 mg of clarithromycin, 25 mg/kg ethambutol, and 600 mg of rifampin 3 times per week. The primary treatment end point was a 12-month period during which sputum cultures were sterile while the patient was receiving therapy. Four male patients were lost to follow-up, but all of the remaining patients successfully completed therapy without significant drug-related adverse events. The mean time (+/- standard deviation [SD]) to sputum conversion was 1.0+/-0.9 months, and the mean duration (+/-SD) of therapy was 13.4+/-0.9 months. No patient who successfully completed therapy had relapsed after a mean (+/-SD) of 46+/-8.0 months. Clarithromycin- and rifampin-containing regimens offer the possibility of effective short-course and intermittent treatment of M. kansasii lung disease.

Anti-Bacterial Agents↗

The CD14 receptor does not mediate entry of Mycobacterium tuberculosis into human mononuclear phagocytes.

Prior reports have suggested that CD14 mediates uptake of Mycobacterium tuberculosis into porcine alveolar macrophages and human fetal microglia, but the contribution of CD14 to cell entry in human macrophages has not been studied. To address this question, we used flow cytometry to quantify uptake by human monocytes and alveolar macrophages of M. tuberculosis expressing green fluorescent protein. Neutralizing anti-CD14 antibodies did not affect bacillary uptake and the efficiency of bacillary entry was similar in THP-1 cells expressing low and high levels of CD14. However, most internalized bacteria were found in CD14+ but not in CD14- monocytes because M. tuberculosis infection upregulated CD14 expression. We conclude that: (1) CD14 does not mediate cellular entry by M. tuberculosis; (2) M. tuberculosis infection upregulates CD14 expression on mononuclear phagocytes, and this may facilitate the pathogen's capacity to modulate the immune response.

Cells, Cultured↗

Repeat positive cultures in Mycobacterium intracellulare lung disease after macrolide therapy represent new infections in patients with nodular bronchiectasis.

The genomic DNA patterns (genotypes) of 55 episodes of late positive sputum isolates, collected after >or=4 consecutive months of negative sputum cultures, in prospective macrolide treatment trials of Mycobacterium avium complex (MAC) lung disease were assessed by pulsed-field gel electrophoresis (PFGE). Having >or=2 cultures positive for MAC after completion of therapy was documented 23 times; of 20 episodes studied by PFGE, 17 (85%) represented new genotypes (i.e., new infections), and 87% occurred in patients with nodular bronchiectasis. With >or=2 positive cultures after therapy was stopped prematurely, 6 (86%) of 7 episodes were relapses. Single positive cultures after completion of therapy occurred 16 times; only 1 (6%) was predictive of a subsequent relapse. No late isolates were macrolide resistant. Thus, relapses of MAC lung disease with these macrolide regimens are unusual, and most infections after completing therapy resulted from new strains in patients with nodular bronchiectasis.

Adult↗

Diagnosis of nontuberculous mycobacterial infections.

This section discusses the methods of laboratory diagnosis of nontuberculous mycobacteria (NTM) using conventional biochemical and nutritional requirements, acid-fast smear microscopy, high performance liquid chromatography (HPLC), antibiotic susceptibility testing, and newer genetic methods such as molecular probes, polymerase chain reaction restriction fragment length polymorphism analysis (PRA), and 16S rDNA sequence analysis. This article discusses how laboratory results are applied by clinicians, and some of the difficulties and controversies regarding the diagnosis of NTM disease after the laboratory work is complete.

Culture Media↗

Management of disease due to Mycobacterium kansasii.

Mycobacterium kansasii presents clinically in a manner most resembling tuberculosis. Diagnosis is usually not difficult; however, the significance of M kansasii isolates from some patients may be hard to determine. Usually, the presence of even one respiratory culture positive for M kansasii is sufficient to make a diagnosis, though few patients can have single respiratory culture positive for M kansasii without evidence of active disease. If not started on medication, these patients must be followed closely. Effective treatment can usually be accomplished with a rifampin-based regimen, or a rifabutin-based regimen for HIV-seropositive patients receiving antiretroviral therapy. Short course and intermittent regimens for treating M kansaii disease show promise but are not yet recommended for routine use.

Anti-Bacterial Agents↗

Pulmonary disease caused by rapidly growing mycobacteria.

The rapidly growing mycobacteria (RGM) differ from slow-growing mycobacteria such as Mycobacterium tuberculosis by virtue of their more rapid growth in culture media and their in vitro resistance to standard antituberculosis drugs. The RGM can produce numerous infections including chronic lung disease. The most common causes of pulmonary disease are Mycobacterium abscessus and Mycobacterium fortuitum. This article reviews the management of patients with lung disease caused by RGM.

Antibiotics, Antitubercular↗

Newly described or emerging human species of nontuberculous mycobacteria.

The advent of molecular testing in the laboratory has brought about the recognition of multiple newly characterized mycobacterial species not previously recognizable with most standard techniques. Some of the species are nonpathogenic, but the majority may cause clinical disease. Each is likely to have its own biology, drug susceptibility pattern, and response to drug/surgical therapy. Thus, it is important to try to recognize these new species in the laboratory. A study of the phenotypic and genotypic characteristics of these new species also may help to elucidate the epidemiology and pathogenesis of these organisms. In addition, there are multiple emerging species of nontuberculous mycobacteria including M. ulcerans, M. haemophilum, M. xenopi, and M. malmoense. [table: see text] These species are being recognized increasingly as a cause of human disease and recovered within the laboratory. The clinician must learn about these new pathogens to recognize them clinically and assist the laboratory in their recovery.

Humans↗

Diagnosing nontuberculous mycobacterial lung disease. A process in evolution.

Assessing the impact of the diagnosis if NTM lung disease on the patient and choosing appropriate therapy are separate considerations. Health care professionals have progressed from an era when patients had unrecognized, progressive, and untreated NTM disease to an era when NTM disease is diagnosed frequently but therapy is either unnecessary or possibly worse than the disease. Perhaps the 1990 ATS statement was correct. The problem is not diagnosing patients with NTM lung disease, the problem is deciding what to do with them after they are diagnosed.

Humans↗