Integration of functional and structural knowledge across scales to decipher information processing in the mammalian brain
Integration of functional and structural knowledge across scales to decipher information processing in the mammalian brain
批准号:
EP/W024292/1
负责人:
Andreas Schaefer
金额:
$252.82万
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --
中文摘要
点击翻译按钮获取中文摘要
英文摘要
The mammalian brain is one of the most complex structures known to mankind. A lot of this complexity stems from the fact that brains operate on a plethora of time and length scales: neurons stretch for millimetres, yet the connections between neurons are of nanometre scale. Understanding how information is processed in this complex structure is a critical prerequisite for understanding dysfunction such as psychiatric disease as well as for building advanced "artificial intelligences". This, however, can only be achieved if the activity of neurons can be linked to the structure of the network of neurons that provides the substrate for neuronal computation. The last decades have seen astonishing progress in using electron microscopy to decipher the logic of neural circuits. Electron microscopy, however, is time-consuming and as electrons do not permeate into tissue for more than a few nanometres, brain tissue has to be cut into thin sections before or during electron imaging. This has so far limited electron microscopy to relatively small tissue volumes, cubes with up to few 100 um length. X-rays, on the other hand, can penetrate tissue for long distances (millimetres or even centimetres). Synchrotrons produce the most powerful X-rays and there is an ongoing revolution in synchrotron technology to further increase the power - the number of photons as well as the quality (coherence) of the X-ray beams - by many orders of magnitude. The ESRF synchrotron (where the UK is a member country) is the first high-energy synchrotron to have received such upgrade. In this project we propose to fully make use of this new X-ray technology and further develop X-ray tomography, the ability to obtain 3-dimensional images without cutting, to allow us to resolve fine neuronal structures from large (several cubic millimetre) pieces of brain tissue. We will combine this new X-ray tomography with prior functional imaging in living mice in order to link the neural activity to the neural structure. We will subsequently perform high resolution electron microscopy on parts of the tissue to combine detailed identification of synaptic contacts between neurons with large-scale information about neuron identity and neuronal processes from X-ray imaging. We will initially apply this new approach to understand how information is transformed in a most prominent brain region, the mouse olfactory bulb, that processes information from the nose for the rest of the brain. Due to the high throughput of synchrotron X-ray imaging we will be able to directly compare the same, genetically labelled, circuits between different individuals. This will allow us to answer the long-standing question how different or alike two mammalian brains are. Finally, combining all of the above - functional imaging, synchrotron X-ray imaging and electron microscopy - enables us to describe the logic of how information is processed by the network of neurons in the olfactory bulb.Altogether, we will develop a new tool to understand how neural circuits process information. Establishing synchrotron X-ray imaging together with functional imaging and electron microscopy in biological tissue will, however, have even wider potential to become a versatile tool to understand the properties of cells and subcellular structure (viruses, cancer microenvironments, immune niches) in the context of entire tissues (lung, liver, thymus). Thus, by developing this joint approach we will not only solve immediate neuroscience questions but also develop a new physical science approach to life science and grow a group of researchers equally at home in both specialties.
期刊论文(8)
专著(0)
科研奖励(0)
会议论文
登录
查看更多内容
DOI:
10.1038/s41467-022-30199-6
发表时间:
2022-05-25
期刊:
Nature communications
影响因子:
16.6
作者:
[]
通讯作者:
DOI:
10.1038/s41592-023-01861-8
发表时间:
2023-06
期刊:
Nature methods
影响因子:
48
作者:
[Collinson LM, Bosch C, Bullen A, Burden JJ, Carzaniga R, Cheng C, Darrow MC, Fletcher G, Johnson E, Narayan K, Peddie CJ, Winn M, Wood C, Patwardhan A, Kleywegt GJ, Verkade P]
通讯作者:
Verkade P
DOI:
10.3389/fcell.2022.880696
发表时间:
2022
期刊:
Frontiers in cell and developmental biology
影响因子:
5.5
作者:
[]
通讯作者:
DOI:
10.1101/2022.02.18.481045
发表时间:
2022-02
期刊:
Frontiers in Cell and Developmental Biology
影响因子:
5.5
作者:
[Yuxin Zhang;Tobias Ackels;A. Pacureanu;M. Zdora;A. Bonnin;Andreas T. Schaefer;C. Bosch]
通讯作者:
Yuxin Zhang;Tobias Ackels;A. Pacureanu;M. Zdora;A. Bonnin;Andreas T. Schaefer;C. Bosch
DOI:
10.1016/j.biopsych.2023.06.006
发表时间:
2023
期刊:
Biological Psychiatry
影响因子:
10.6
作者:
[Bosch C]
通讯作者:
Bosch C
共 7 条
NeuroNex: From odor to Action: Discovering Principles of Olfactory-Guided Natural Behavior - NSF Proposal Number: 2014217
-
批准号:MR/T046090/1
-
项目类别:Research Grant
-
资助金额:$145.5万
-
财政年份:2020
-
负责人:Andreas Schaefer
-
依托单位:
Cellular determinants of odor discrimination behaviour in rodents
-
批准号:BB/E023738/1
-
项目类别:Fellowship
-
资助金额:$126.52万
-
财政年份:2007
-
负责人:Andreas Schaefer
-
依托单位:
国内基金
海外基金
登录
查看更多内容
Got2基因对浆细胞样树突状细胞功能的调控及其在系统性红斑狼疮疾病中的作用研究
-
批准号:82371801
-
项目类别:面上项目
-
资助金额:47.00万元
-
批准年份:2023
-
负责人:周海波
-
依托单位:
利用CRISPR内源性激活Atoh1转录促进前庭毛细胞再生和功能重建
-
批准号:82371145
-
项目类别:面上项目
-
资助金额:46.00万元
-
批准年份:2023
-
负责人:陶永
-
依托单位:
SMC5-NSMCE2功能异常激活APSCs中p53/p16衰老通路导致脂肪萎缩和胰岛素抵抗的机制研究
-
批准号:82371873
-
项目类别:面上项目
-
资助金额:50.00万元
-
批准年份:2023
-
负责人:乔洁
-
依托单位:
基于再生运动神经路径优化Agrin作用促进损伤神经靶向投射的功能研究
-
批准号:82371373
-
项目类别:面上项目
-
资助金额:49.00万元
-
批准年份:2023
-
负责人:沃雁
-
依托单位:
基于密度泛函理论金原子簇放射性药物设计、制备及其在肺癌诊疗中的应用研究
-
批准号:82371997
-
项目类别:面上项目
-
资助金额:48.00万元
-
批准年份:2023
-
负责人:张春富
-
依托单位:
HK2乳酰化修饰介导巨噬细胞功能障碍在脓毒症中的作用及机制
-
批准号:82372160
-
项目类别:面上项目
-
资助金额:49.00万元
-
批准年份:2023
-
负责人:陈峰
-
依托单位:
OBSL1功能缺失导致多指(趾)畸形的分子机制及其临床诊断价值
-
批准号:82372328
-
项目类别:面上项目
-
资助金额:49.00万元
-
批准年份:2023
-
负责人:项盈
-
依托单位:
LTB4/BLT1轴调控NLRP3炎症小体对糖尿病认知功能障碍的作用研究
-
批准号:82371213
-
项目类别:面上项目
-
资助金额:47.00万元
-
批准年份:2023
-
负责人:王修哲
-
依托单位:
Identification and quantification of primary phytoplankton functional types in the global oceans from hyperspectral ocean color remote sensing
-
批准号:--
-
项目类别:--
-
资助金额:160万元
-
批准年份:2022
-
负责人:李忠平
-
依托单位:
浸润特性调制的统计热力学研究
-
批准号:21173271
-
项目类别:面上项目
-
资助金额:58.0万元
-
批准年份:2011
-
负责人:周世琦
-
依托单位: