Automated Author ProfileKara, Prakash
Kara, Prakash
Current S-Index
Sum of Dataset Indices for all datasets
Average Dataset Index per Dataset
Average Dataset Index per dataset
Total Datasets
Total datasets for this author
Average FAIR Score
Average FAIR Score per dataset
Total Citations
Total citations to the author's datasets
Total Mentions
Total mentions of the author's datasets
S-Index Interpretation
The S-Index (Sharing Index) is a comprehensive metric that represents the cumulative impact of all your datasets. It is calculated as the sum of Dataset Index scores across all your claimed datasets.
What it means:
- A higher S-index indicates greater overall impact of your datasets relative to typical datasets in their fields of research
- The S-Index grows as you add more datasets or as existing datasets gain more citations and mentions
- It provides a single number to track your research data impact over time
Current S-Index: 2.7 (sum of 3 datasets Dataset Index scores)
More information here.
S-Index Over Time
Cumulative Citations Over Time
Cumulative Mentions Over Time
Datasets
Multiphoton microscopy can resolve fluorescent structures and dynamics deep in scattering tissue and has transformed neural imaging, but applying this technique in vivo can be limited by the mechanical and optical constraints of conventional objectives. Short working distance objectives can collide with compact surgical windows or other instrumentation and preclude imaging. Here we present an ultra-long working distance (20 mm) air objective called the Cousa objective. It is optimized for performance across multiphoton imaging wavelengths, offers a more than 4 mm2 field of view with submicrometer lateral resolution and is compatible with commonly used multiphoton imaging systems. A novel mechanical design, wider than typical microscope objectives, enabled this combination of specifications. We share the full optical prescription, and report performance including in vivo two-photon and three-photon imaging in an array of species and preparations, including nonhuman primates. The Cousa objective can enable a range of experiments in neuroscience and beyond.
Authors
- Cardin, Jessica A. ;
- Higley, Michael J. ;
- Smith, Gordon ;
- Kara, Prakash ;
- Nielsen, Kristina ;
- Smith, Ikuko T ;
- Smith, Spencer ;
- Ricci, Anthony J ;
- Fitzpatrick, David ;
- Yu, Che-Hang ;
- Yu, Yiyi ;
- Adsit, Liam ;
- Chang, Jeremy ;
- Barchini, Jad ;
- H. Moberly, Andrew ;
- Benisty, Hadas ;
- Kim, Jinkyung ;
- Young, Brent ;
- Heng, Kathleen ;
- Farinella, Deano ;
- Leikvoll, Austin ;
- Pavan, Rishaab ;
- Vistein, Rachel ;
- Nanfito, Brandon ;
- Hildebrand, David ;
- Otero-Coronel, Santiago ;
- Vaziri, Alipasha ;
- Goldberg, Jeffrey L.
Multiphoton microscopy can resolve fluorescent structures and dynamics deep in scattering tissue and has transformed neural imaging, but applying this technique in vivo can be limited by the mechanical and optical constraints of conventional objectives. Short working distance objectives can collide with compact surgical windows or other instrumentation and preclude imaging. Here we present an ultra-long working distance (20 mm) air objective called the Cousa objective. It is optimized for performance across multiphoton imaging wavelengths, offers a more than 4 mm2 field of view with submicrometer lateral resolution and is compatible with commonly used multiphoton imaging systems. A novel mechanical design, wider than typical microscope objectives, enabled this combination of specifications. We share the full optical prescription, and report performance including in vivo two-photon and three-photon imaging in an array of species and preparations, including nonhuman primates. The Cousa objective can enable a range of experiments in neuroscience and beyond.
Authors
- Yu, Che-Hang ;
- Yu, Yiyi ;
- Adsit, Liam ;
- Chang, Jeremy ;
- Barchini, Jad ;
- H. Moberly, Andrew ;
- Benisty, Hadas ;
- Kim, Jinkyung ;
- Young, Brent ;
- Heng, Kathleen ;
- Farinella, Deano ;
- Leikvoll, Austin ;
- Pavan, Rishaab ;
- Vistein, Rachel ;
- Nanfito, Brandon ;
- Hildebrand, David ;
- Coronel, Santiago Otero ;
- Vaziri, Alipasha ;
- Goldberg, Jeffrey L. ;
- Ricci, Anthony J ;
- Fitzpatrick, David ;
- Cardin, Jessica A. ;
- Higley, Michael J. ;
- Smith, Gordon ;
- Kara, Prakash ;
- Nielsen, Kristina ;
- Smith, Ikuko T ;
- Smith, Spencer
Multiphoton microscopy can resolve fluorescent structures and dynamics deep in scattering tissue and has transformed neural imaging, but applying this technique in vivo can be limited by the mechanical and optical constraints of conventional objectives. Short working distance objectives can collide with compact surgical windows or other instrumentation and preclude imaging. Here we present an ultra-long working distance (20 mm) air objective called the Cousa objective. It is optimized for performance across multiphoton imaging wavelengths, offers a more than 4 mm2 field of view with submicrometer lateral resolution and is compatible with commonly used multiphoton imaging systems. A novel mechanical design, wider than typical microscope objectives, enabled this combination of specifications. We share the full optical prescription, and report performance including in vivo two-photon and three-photon imaging in an array of species and preparations, including nonhuman primates. The Cousa objective can enable a range of experiments in neuroscience and beyond.
Authors
- Yu, Che-Hang ;
- Yu, Yiyi ;
- Adsit, Liam ;
- Chang, Jeremy ;
- Barchini, Jad ;
- H. Moberly, Andrew ;
- Benisty, Hadas ;
- Kim, Jinkyung ;
- Young, Brent ;
- Heng, Kathleen ;
- Farinella, Deano ;
- Leikvoll, Austin ;
- Pavan, Rishaab ;
- Vistein, Rachel ;
- Nanfito, Brandon ;
- Hildebrand, David ;
- Otero-Coronel, Santiago ;
- Vaziri, Alipasha ;
- Goldberg, Jeffrey L. ;
- Ricci, Anthony J ;
- Fitzpatrick, David ;
- Cardin, Jessica A. ;
- Higley, Michael J. ;
- Smith, Gordon ;
- Kara, Prakash ;
- Nielsen, Kristina ;
- Smith, Ikuko T ;
- Smith, Spencer