Unveiling comprehensive cellular biophysical properties using quantitative phase digital holographic microscopy
Unveiling comprehensive cellular biophysical properties using quantitative phase digital holographic microscopy
批准号:
RGPIN-2018-06198
负责人:
Marquet, Pierre
金额:
$2.48万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2019
资助国家:
加拿大
项目状态:
已结题
起止时间:
2019-01-01 至 2020-12-31
中文摘要
人类大脑的发育表现出物种特有的特征,特别是产生被认为是人类特有认知能力核心的结构,比如大脑皮层。然而,这种神经发育的具体机制和导致这种复杂性仍然不完全清楚,主要是因为人类胚胎大脑的实验可及性差。然而,最近,基于多能干细胞(PSCs)技术的发展已经允许从健康志愿者的简单皮肤活检中产生构成其组织的所有细胞类型,包括构成脑组织的神经元细胞。由于这种从PSCs生成人类神经元细胞的过程在很多方面都是胚胎神经元发育的缩影,其准确的研究为分析人类大脑发育提供了独特的新机遇。******利用PSCs技术更好地了解体外人脑发育模型,是我们在加拿大神经光子学卓越研究主席(CERC)框架内实现的研究项目的主要目标。为了实现这一目标,我们一直在开发新的多模态光学显微镜技术,该技术能够在人类成熟和功能神经元的psc生成过程中准确和非侵入性地观察细胞结构和动力学。******具体来说,由于这项研究计划,我们计划开发基于全息原理的多模态光学显微镜技术,不仅能够以3D方式可视化活细胞,而且还能同时提供有关细胞生物物理学和生物化学的信息。事实上,最近来自不同领域的研究表明,物理力量和生物力学细胞特性在控制细胞和组织发育方面发挥着与化学物质和基因同样重要的作用。实际上,使用这种新颖的多模态全息显微镜技术将有可能解决有关与胚胎神经元成熟为功能神经元相关的细胞生物物理特性测量的具体问题。此外,这种多模态能力允许同时掌握多方面生物过程的几个方面,这是一种有希望的方法,可以更全面地了解从psc中产生功能性神经元的基本机制。***我们的研究项目,在光学,光子学和神经生物学之间的接口主要培养物理学家,工程师,数学家和生物学家,谁结合他们的知识和技能,以推进我们的理解人类大脑发育的基本机制使用psc和改进我们的方法来推进细胞成像。
英文摘要
The human brain development displays species-specific features, in particular to generate the structures thought to be at the core of human-specific cognitive abilities, such as the cerebral cortex. However, the specific mechanisms underlying this neurodevelopment and leading to this complexity remain incompletely understood, primarily because of the poor experimental accessibility of the human embryonic brain. Nevertheless, recently, the development of technologies based on pluripotent stem cells (PSCs) have permitted to generate, from e.g. a simple skin biopsy of a healthy volunteer, all cell types that comprise his/her tissue including neuronal cells, which constitute the brain tissue. Considering that such generation process of human neuronal cells from PSCs in many ways recapitulates the development of embryonic neurons, its accurate study is providing unique new opportunities for the analysis of human brain development.******Obtaining a better understanding of this modeling human brain development in-vitro using PSCs technology represents the main objective of our research program achieved within the framework of the Canada Excellence Research Chair (CERC) in Neurophotonics. Toward this aim, we have been developing new multimodal optical microscopy techniques having the capacity to visualize accurately and non-invasively cells structure and dynamics during the generation process of human mature and functional neurons from PSCs.******Specifically, thanks to this research program, we plan to develop multimodal optical microscopy techniques, based on a holographic principle, having not only the capacity to visualize living cells in 3D but also to simultaneously provide information about cell biophysics and biochemistry. Indeed, recent work from a variety of fields has revealed that physical forces and biomechanical cell properties play as important a role in control of cell and tissue development as chemicals and genes. Practically, using such novel multimodal holographic microscopy techniques will make possible to address specifically questions concerning the measurement of cell biophysical properties in relation with the maturation of embryonic neurons into functional neurons. In addition, this multimodal capacity allowing grasping simultaneously several aspects of the multifaceted biological processes represents a promising approach to obtain a more comprehensive understanding of the basic mechanisms underlying the generation of functional neurons from PSCs.***Our research program, at the interface between optics, photonics and neurobiology mainly trains physicists, engineers, mathematicians and biologists, who combine their knowledge and skills to advance our understanding of the basic mechanisms of human brain development using PSCs and to improve our methods for advancing cell imaging.
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Unveiling comprehensive cellular biophysical properties using quantitative phase digital holographic microscopy
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批准号:RGPIN-2018-06198
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项目类别:Discovery Grants Program - Individual
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资助金额:$4.95万
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财政年份:2022
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负责人:Marquet, Pierre
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依托单位:
Unveiling comprehensive cellular biophysical properties using quantitative phase digital holographic microscopy
-
批准号:RGPIN-2018-06198
-
项目类别:Discovery Grants Program - Individual
-
资助金额:$2.48万
-
财政年份:2021
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负责人:Marquet, Pierre
-
依托单位:
Unveiling comprehensive cellular biophysical properties using quantitative phase digital holographic microscopy
-
批准号:RGPIN-2018-06198
-
项目类别:Discovery Grants Program - Individual
-
资助金额:$2.48万
-
财政年份:2020
-
负责人:Marquet, Pierre
-
依托单位:
Unveiling comprehensive cellular biophysical properties using quantitative phase digital holographic microscopy
-
批准号:RGPIN-2018-06198
-
项目类别:Discovery Grants Program - Individual
-
资助金额:$2.48万
-
财政年份:2018
-
负责人:Marquet, Pierre
-
依托单位:
海外基金