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Biomedical subjects

A Sergeev

Publications and source records attributed to A Sergeev.

8 recordsLinked to original sources

Deformation electron-phonon coupling in disordered semiconductors and nanostructures.

We study the electron-phonon relaxation (dephasing) rate in disordered semiconductors and low-dimensional structures. The relaxation is determined by the interference of electron scattering via the deformation potential and elastic electron scattering from impurities and defects. We have found that in contrast with the destructive interference in metals, which results in the Pippard ineffectiveness condition for the electron-phonon interaction, the interference in semiconducting structures substantially enhances the effective electron-phonon coupling. The obtained results provide an explanation to energy relaxation in silicon structures.

Journal Article↗

In vivo endoscopic optical coherence tomography of esophagitis, Barrett's esophagus, and adenocarcinoma of the esophagus.

BACKGROUND AND STUDY AIMS: We studied the feasibility of endoscopic optical coherence tomography imaging in esophageal disorders, including Barrett's esophagus and Barrett-related adenocarcinoma. Optical coherence tomography is a high-resolution cross-sectional imaging technique with a resolution of almost 10 microm. PATIENTS AND METHODS: The mucosal architecture of reflux esophagitis (n = 9) and Barrett's esophagus (n = 9) including Barrett-related esophageal cancer (n = 6) was studied by optical coherence tomography imaging. RESULTS: In different stages of reflux esophagitis edema, fibrinoid deposits, or loss of the epithelial layer were observed. Optical coherence tomography images of Barrett's esophagus substantially differed from normal esophagus, reflux esophagitis, and esophageal carcinoma. A stratified structure of the mucosa was still preserved in Barrett's esophagus. However, images of Barrett-related cancer lacked the regular structure of the esophagus. CONCLUSIONS: The high consistency of the first optical coherence tomography findings, the resolution of up to 10 microm, and the distinct pattern of normal, inflammatory, premalignant and malignant tissues make optical coherence tomography a promising method for endoscopically obtained optical biopsy.

Adenocarcinoma↗

In vivo endoscopic optical coherence tomography of the human gastrointestinal tract--toward optical biopsy.

BACKGROUND AND STUDY AIMS: Optical coherence tomography (OCT) is a new technique for high-resolution cross-sectional imaging using infrared light. It has over 10 times the resolution of the currently available ultrasonography. Although in vitro studies have suggested its potential for gastrointestinal imaging, in vivo studies have not been possible so far on account of technical limitations. PATIENTS AND METHODS: We describe here the first clinical study of OCT during routine endoscopy obtaining high resolution images of the normal esophageal, gastric, and colonic mucosa. Portable OCT equipment and a fiberoptic-based flexible probe for endoscopic use have been developed by the authors. RESULTS: Differences in the optical properties of epithelium, lamina propria, muscularis mucosae, and submucosa enabled distinction of the mucosal architecture. Owing to the low penetration depth (1 mm) and high resolution (10 microm), OCT images may become comparable to mucosal histological findings. Image acquisition time was 1.5 seconds, and the entire procedure was completed within 5 minutes. Endoscopic OCT images of colonic adenoma and carcinoma were also studied and compared with the corresponding histology. CONCLUSIONS: The newly developed portable OCT equipment and flexible fiberoptic probe makes OCT a promising method for endoscopic "optical biopsy".

Biopsy↗

Respiratory Marburg virus infection in guinea pigs.

Marburg virus (MV) reproduction in organs, hematological and pathological changes were studied by virological and clinical methods, light and electron microscopy in guinea pigs respiratory challenged by the virus. Liver and spleen were most affected by MV, as in parenteral infection. The sequential involvement of cells in virus replication was also the same as in parenteral infection, with monocytoid-macrophagal cells infected first, followed by hepatocytes, spongiocytes, endotheliocytes and fibroblasts. Hemopoietic cells showed evidence of severe damage in respiratory infected guinea pigs. A distinguishing feature of the respiratory infection was close contact of leucocytes with MV infected cells. It is suggested that the entrapment and accumulation of MV in the lungs of respiratory infected guinea pigs makes possible the enfoldment leucocyte attack which does not, however, result in destruction of the infected cells.

Animals↗