Zobrazeno 1 - 10
of 13
pro vyhledávání: '"Paul Constantinou"'
Autor:
Matthew Paul Constantinou, Jessica Stepanous, Suzet Tanya Lereya, Hannah Wilkinson, Sarah Golden, Jessica Deighton
Publikováno v:
Trials, Vol 25, Iss 1, Pp 1-18 (2024)
Abstract Background There is a pressing need to offer more accessible, evidence-based psychological interventions to secondary school students who are increasingly reporting difficulties with anxiety and low mood. The aim of this pragmatic randomised
Externí odkaz:
https://doaj.org/article/34b9b6b640cf40eaa47174776c6f9faa
Autor:
Paul Constantinou
Publikováno v:
Opto-Canada: SPIE Regional Meeting on Optoelectronics, Photonics, and Imaging.
Light microscopy is a widely used tool in biomedical research. Fluorescence microscopy concentrates on quantitative and qualitative measurements of the fluorescent light emitted from the specimen under study. This is generally done using fluorescent
Autor:
Brian C. Wilson, Yanhui Bai, Paul Constantinou, Albert I. H. Chen, Savvas Damaskinos, John T.W. Yeow, M. Pallapa
Publikováno v:
Journal of Microscopy. 245:210-220
This paper presents microelectromechanical system micromirrors with sidewall electrodes applied for use as a Confocal MACROscope for biomedical imaging. The MACROscope is a fluorescence and brightfield confocal laser scanning microscope with a very l
Autor:
Anne L. Martel, Paul Constantinou, Martin J. Yaffe, Gina M. Clarke, Danoush Hosseinzadeh, Chris Peressotti
Publikováno v:
Computerized Medical Imaging and Graphics. 35:531-541
Conventional histopathological evaluation is performed on breast specimens using a highly limited sampling of tissues visualized in a two-dimensional (2D) manner although important tumor measurements are three-dimensional. Here we describe a ‘3D’
Publikováno v:
IEEE/ASME Transactions on Mechatronics. 15:501-510
This paper presents a 2 DOF silicon-on-insulator (SOI) microelectromechanical systems (MEMS) mirror with sidewall (SW) electrodes for biomedical imaging. The MEMS mirror is actuated by electrostatic actuators, and the mirror plate is 1000 μm × 1000
Publikováno v:
IEEE Journal of Selected Topics in Quantum Electronics. 11:766-777
Recent advances in imaging technology have contributed greatly to biological science. Confocal fluorescence microscopes can acquire two-dimensional and three-dimensional images of biological samples such as live or fixed cells and tissues. Specimens
Autor:
Paul, Constantinou
Microscopic imaging in the biomedical sciences allows for detailed study of the structure and function of normal and abnormal (i.e., diseased) states of cells and tissues. The expression patterns of proteins and/or physiological parameters within the
Externí odkaz:
http://hdl.handle.net/1807/17458
Autor:
Nick McKinnon, Pierre Lane, Brian C. Wilson, Paul Constantinou, Calum MacAulay, John T.W. Yeow, Brian McFadden, Anders Ballestad
Publikováno v:
SPIE Proceedings.
We report results from a proof-of-principle study investigating a technique for high-resolution imaging of large fields of view (FOV). This is achieved through structured illumination of the sample from a laterally replicated spatial light modulator
Publikováno v:
SPIE Proceedings.
The use of digital fluorescence confocal microscopy in biological sciences has grown in recent decades due to the versatility of fluorescence imaging. The ability to selectively label specific morphological features, genetic mutations and/or chemical
Publikováno v:
Photonics North 2004: Photonic Applications in Astronomy, Biomedicine, Imaging, Materials Processing, and Education.
Recent advances in imaging technology have contributed greatly to biological science. Confocal fluorescence microscopy (CFM) facilitates high-contrast 2D and 3D images of biological samples such as living cells, and frozen or fixed tissue sections. H