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相关概念视频

Organization of the Brain01:30

Organization of the Brain

3.9K
The brain is an integral component of the nervous system and serves as the center for processing sensory inputs, making decisions, and directing bodily actions. This complex organ is organized into three primary sections: the hindbrain, midbrain, and forebrain, each responsible for a range of vital functions.
Hindbrain
The hindbrain, located at the base of the brain, plays a vital role in regulating automatic processes that sustain life. It includes the medulla oblongata, which is essential for...
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Collisions in Multiple Dimensions: Introduction01:05

Collisions in Multiple Dimensions: Introduction

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It is far more common for collisions to occur in two dimensions; that is, the initial velocity vectors are neither parallel nor antiparallel to each other. Let's see what complications arise from this. The first idea is that momentum is a vector. Like all vectors, it can be expressed as a sum of perpendicular components (usually, though not always, an x-component and a y-component, and a z-component if necessary). Thus, when the statement of conservation of momentum is written for a...
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Collisions in Multiple Dimensions: Problem Solving01:06

Collisions in Multiple Dimensions: Problem Solving

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In multiple dimensions, the conservation of momentum applies in each direction independently. Hence, to solve collisions in multiple dimensions, we should write down the momentum conservation in each direction separately. To help understand collisions in multiple dimensions, consider an example.
A small car of mass 1,200 kg traveling east at 60 km/h collides at an intersection with a truck of mass 3,000 kg traveling due north at 40 km/h. The two vehicles are locked together. What is the...
5.7K
Cerebrum: Anatomical Overview II01:11

Cerebrum: Anatomical Overview II

6.0K
Each cerebral hemisphere can be divided into three main regions. The outermost region, the cerebral cortex, is a thin layer (2 to 4 millimeters thick) made up of gray matter, consisting of neuron cell bodies, dendrites, glial cells, and blood vessels. The middle region, or white matter, is primarily composed of myelinated nerve fibers organized into three types of large tracts: association fibers, commissures, and projection fibers. Association fibers connect different areas within the same...
6.0K
Anatomy of the Brain: Ventricles01:18

Anatomy of the Brain: Ventricles

11.3K
There are hollow fluid-filled cavities known as ventricles deep inside the human brain. There are two lateral ventricles, one in each cerebral hemisphere, and each has three different projections — the anterior, inferior, and posterior horns visible from the lateral side. A thin membrane called the septum pellucidum separates the two lateral ventricles. The slender third ventricle in the diencephalon is connected to each lateral ventricle via a channel called the interventricular foramen.
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Brain Imaging01:14

Brain Imaging

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Brain imaging technologies provide critical insights into both the structure and function of the human brain, enabling medical professionals and researchers to diagnose, study, and treat neurological disorders or psychiatric disorders more effectively.
These technologies include computerized axial tomography (CAT or CT scans), positron-emission tomography (PET scans),  magnetic resonance imaging (MRI),  functional magnetic resonance imaging (fMRI), and Transcranial Magnetic...
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相关实验视频

Updated: Apr 7, 2026

Modeling the Functional Network for Spatial Navigation in the Human Brain
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Modeling the Functional Network for Spatial Navigation in the Human Brain

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大脑连接在第四维的连接.

Mathias F Wernet1, Claude Desplan2

  • 1Center for Genomics and Systems Biology, New York University Abu Dhabi (NYUAD), 129188 Saadiyat Island, Abu Dhabi, UAE.

Cell
|July 4, 2015
PubMed
概括

研究人员观察了果光受体生长如何使用先进的显微镜导航到他们的目标. 他们开发了一种简单的算法来解释这种复杂的神经连接,并提供了对发育连接的洞察.

科学领域:

  • 神经科学是一个神经科学.
  • 发展生物学 发展生物学
  • 细胞生物学 细胞生物学

背景情况:

  • 建立精确的神经连接对于神经系统的功能至关重要.
  • 引导神经元连接特异性的机制仍然不完全理解.

研究的目的:

  • 研究Drosophila光受体生长的目标选择的动态过程.
  • 阐明控制神经元连接的基本原则.

主要方法:

  • 利用时差多光子显微镜观察生长的行为 in vivo.
  • 开发了一个基于观察动态的计算算法.

主要成果:

  • 记录了Drosophila光受体生长的目标参与的逐步过程.
  • 开发的算法成功地重复了观察到的复杂的布线模式.
  • 确定了影响路径决定的关键动态因素.

结论:

  • 一个简单的发育算法可以解释复杂的神经电路的形成.
  • 建议在开发过程中实现神经元布线特异性的基本框架.

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