发布时间:2019-08-10 18:21 原文链接: MicroscopesinCellBiology

Microscopes in Cell Biology

Introduction

Microscopy has a major role in the study of cells. From the very beginning, researchers have tried to develop ways of looking directly at living cells. This direct examination has revealed much about the morphology of cells and tissues. In recent years, developments in microscopes, dyes, staining protocols and preparation techniques have helped reveal even more about the structure and function of cells. The department of Advanced Electronmicroscopy and Imaging has many microscopes available

Continued, efficient use of these microscopes in modern cell biology and the production of good quality micrographs comes from a good knowledge of these instruments. The researcher, although challenged by rapid technical advances, must understand the basic principles of microscope operation and their technical limitations.

The aim of this section is to introduce, in simple terms, the capabilities and limitations of the optical components of the light microscope, the adjustments required for optimal use of the instruments, specimen preparation procedures and photographic techniques.

The Light Microscope in Biology

Photomicroscopy

The technique of making photographs by means of an optical microscope is called photomicroscopy. In its simplest form an ordinary 35mm camera can be attached to the ocular tube of a microscope and the image recorded on photographic film. The quality of the image formed will depend almost entirely on the quality of the image produced by the light microscope. This in turn is dependent upon the quality of the lenses used for the imaging and upon the correct adjustment of the microscope.

The optical system of a light microscope can be separated into three parts. These are the substage condenser lens, the objective lens and the eyepieces.

Light, from the illumination source, is directed through the substage condenser lens (found below the specimen stage) which focuses it onto the specimen (mounted on a glass slide). This light then passes through the specimen and into the objective lens. It is this lens that resolves the fine detail present in the specimen. It projects the magnified image to a fixed position behind the lens, in the body of the microscope where it is further enlarged by the eyepieces (or oculars). The light emerging from the oculars is focussed to a point, called the eyepoint, where the eye can see the magnified image.

The condenser lens

On most microscopes, light entering the condenser lens usually comes from a fixed light source at the bottom of the microscope. The size of the light beam entering the lens is controlled by the field diaphragm in front of the illumination source. Adjustments of the focus of the condenser lens and the opening of the diaphragm are performed for Kohler illumination (see below).

The objective lens

Microscope objectives come in many forms, which are all interchangeable on the microscope. A light microscope usually has a selection of objective lenses on the nosepiece. The most obvious difference between these objectives is the magnification power of each. However, objective lenses can also differ in their degree of optical correction, their numerical aperture and their tube length.

The eyepieces

The purpose of the eyepieces in a light microscope is to further enlarge the primary image formed by the objective lens and to render it visible as a "virtual" image for the eye to see. Although the eyepieces do not improve the resolution of the image they magnify, low quality eyepieces can degrade the image formed.

Other parts of the system

Although the quality of the lenses used in the construction of a light microscope play a major role in image quality and resolution, they are also affected by other external factors.

The specimen

One important fact that is often overlooked in microscopy and photomicroscopy is that the specimen is a part of the optical system. It is important that sections through tissues or cells be as thin as possible to obtain maximum resolution. Although it is possible to obtain sections of frozen or plastic embedded tissue as thin as 0.3 to 2 µm, most researchers still use 10 to 20 µm thick sections for their work. Examination of whole cell mounts results in an unavoidable loss of resolution.

The coverslip glass

Although the majority of the coverslips commercially available today are made from optical quality glass and are in the correct thickness range of 0.16 to 0.19 mm, the quality and thickness of the coverslip glass affects the microscopic image.  Coverslip thickness is less critical if oil immersion lenses are used when the refractive index of the glass is the same, or close, to that of the immersion oil. Image quality, however, can be affected if the coverslips are contaminated with mounting medium, immersion oil or dirt.

Vibration

The image produced by all cameras is affected by vibration. The long exposure times sometimes used in light microscopes makes these instruments very susceptible to vibration. This may be external vibration, coming through the base of the microscope, or it may originate from the microscope itself. Most microscopes are designed to have low levels of vibration during normal operation so if the apparatus is placed on a solid support away from obvious sources of vibration (e.g., elevator shafts), then problems with vibration should not occur. Touching the microscope or the support table when picture taking, however, may cause vibrations which will affect the final image.

Calculating the final magnification on the photomicrograph

The magnification of the image on the film is the product of the objective magnification and the eyepiece magnification. For microscopes with cameras separated from the eyepieces, the magnification of the image onto the film is substituted for the eyepiece magnification.

 A more accurate and simpler method is to measure the magnification using a stage micrometer. This is a glass slide onto which is etched a scale of finely ruled lines of known separation (usually in millimeters). The stage micrometer is placed on the specimen stage and its image recorded on film. Measuring the separation of lines and comparing these with the original scale will give an accurate estimation of the magnification of the image. This estimation can be performed on the film, or on the final image to be used.

 A convenient formula for calculating the magnification is

  magnification = Image size/object size

Use of immersion oil

High magnification and high resolution are obtained in the light microscope by using oil immersion objective lenses. When an objective lens is to be used in this way it will have the word "oil" written on it. For general use, a drop of oil is placed on the coverslip of the specimen slide and the objective lens is immersed into the oil. Only small amounts of oil are needed, and the objective lens should be cleaned of oil after use by wiping it with a piece of lens tissue. Take care not to contaminate the microscope with the oil, especially any objective lenses that are not oil immersible.

Objective lenses with a numerical aperture [NA] of more than 1.00 will work better if the condenser lens is also an oil immersion lens. This type of condenser lens is not available on all microscopes.

When using the oil, it is important not to shake the bottle or introduce air bubbles by any other way. The bottle should never be left open for long periods of time, as dust and other debris in the oil will impair the image quality. Contamination of the immersion oil with the specimen mounting medium (which will interfere with the final imaging) can be avoided by either letting the medium dry before examining the slide or by sealing the coverslip to the slide with nail polish. In addition to affecting the image resolution, contaminated immersion oil will produce high levels of background fluorescence when illuminated with UV light.

Protocol for using oil immersion lenses

  1. Find the specimen using a low power dry objective lens.

  2. Move the oil immersion lens into position and place a small drop of oil on the coverslip. To prevent air bubble formation, a drop of oil can be placed on the objective lens.

  3. Move the specimen stage up to the objective until the lens is near, but not, touching the slide.

  4. Look through the eyepieces and slowly move the specimen slide away from the objective lens until the specimen on the slide is in focus.

This simple procedure can be remembered as "rack up, focus down."

Methods of illumination

Kohler illumination

This is the most widely used system of illuminating a specimen in photomicroscopy. It is the illuminating system that provides best image quality and illumination.

Kohler illumination uses a field condenser to focus the image of the lamp onto the substage condenser, which in turn focuses the image of the lamp condenser onto the specimen.
The main advantage of this system of illumination is that, when the elements are properly aligned, a uniformly illuminated field is projected onto the specimen. Using this system, there is no restriction on the light source, so different types of bulbs can be used.

Protocol for alignment of Kohler illumination system

  1. Turn on the light source and open the field diaphragm.

  2. Place a slide on the specimen stage and focus the specimen with the objective lens.

  3. Close down the field diaphragm to a small aperture.

  4. Focus the field diaphragm image by moving the condenser up or down.

  5. Center the field diaphragm image.

  6. Open up the aperture of the field diaphragm until its diameter is equal to or just less than the observed field in the microscope.

Darkfield illumination

Although not in general use for cell biology, it is worth mentioning this method of illumination. For darkfield illumination, the cone of light illuminating the specimen must not enter the microscope objective. Only light that is scattered by the specimen is detected by the objective lens. This is achieved by use of darkfield diaphragm stops or special darkfield substage condensers called paraboloid or cardioid condensers.

The essential principle of darkfield optics is the formation of a hollow cone of light whose apex falls on the specimen plane. If the light is focused at the object plane and there is no object present, then the objective lens is inside the dark base of the hollow cone of light and the light is invisible. When a specimen is present, the light is deviated, or scattered, by structures on the specimen into the objective lens. A bright image of these details is then visible against a dark background. Because of the high image contrast produced, this illumination method is able to detect extremely fine particles. No artificial specimen contrast is needed to detect fine detail, so this method is useful for examining living cells. It cannot, however, visualize intracellular structures.

Specialized imaging techniques

Phase contrast

Phase contrast microscopy is probably the most widely used method of examining living cells. It can be used to produce contrast effects of many low contrast specimens, such as living cells, and can visualize intracellular structures.

Theoretic aspects

When a ray of light from a single point source is split in two and passed (refracted) through a transparent medium, the two rays can be recombined without interference. If one of the rays, however, passes through a medium of a different refractive index, its speed is altered and the two rays, when recombined, may be out of phase. If this happens then interference occurs and the recombined beam is less bright than the original beam.

A way to visualize this interference is to imagine the split rays as waves. If neither one is altered then they can recombine in phase, with no loss of intensity. If one of the rays, however, has its speed changed, the waves may no longer match when recombined. When the configurations differ by less than a wavelength, the waves are out of phase and their recombination results in a loss of intensity. When they are out of phase by 1/2 wavelength, the rays will cancel each other out, and no light is seen.

相关文章

每年主刀800台手术,“大师姐”抽空发顶刊刷新历史

文|《中国科学报》记者李思辉实习生何睿她是一位知名三甲医院的科室主任:不仅负责科室的管理工作,而且每周4个半天坐诊,每年主刀800多台手术;她是院士师门的“大师姐”:繁忙的临床工作之余,做研究、带学生......

2024年张锋团队迎来首篇Cell

Fanzor(Fz)是一种广泛存在于真核生物结构域的ωRNA引导内切酶,具有独特的基因编辑潜力。2024年8月28日,麻省理工学院/博德研究所张锋团队在Cell在线发表题为“Structuralins......

创造新的记录!西湖大学1天2篇Cell

叶绿体蛋白在ATP酶马达的驱动下,通过叶绿体外膜(TOC)转座子和叶绿体内膜(TIC)超复合体的转座子导入。Ycf2-FtsHi复合体已被确定为叶绿体进口马达。然而,其在前蛋白转运过程中与TIC复合物......

半夜灵机一动,武大教授获得一个神奇的“工具”

文| 《中国科学报》记者李思辉实习生毕若雪“2021年暑假的一个凌晨,我突然灵机一动,思考了很久的一个模型突然清晰起来。我立即从床上蹦起来,花了5分钟,在纸上把它清楚地画了出来!”说起最近发......

Cell和Wiley开放“一稿多投”系统涉及这些期刊

“一稿多投”一直被认为是不端的行为,但这个“规矩”是在纸质时代信息沟通不畅的情况下制定的,近年来广大作者呼吁取消这一观念的声音已振聋发聩!让人欣喜的是,截止目前,已经有两大国际知名出版社响应了这一呼吁......

北京理工大学,Cell+1

2024年4月23日,北京理工大学生命学院肖振宇副教授、中国科学院动物研究所王红梅、于乐谦、郭靖涛研究员、中国农业大学魏育蕾教授、郑州大学第一附属医院何南南助理研究员在国际学术期刊Cell发表文章《3......

Cell论文遭曝20幅图作假,引发学术界震动

2019年10月3日,加州大学圣地亚哥分校BrendaL.Bloodgood团队(G.StefanoBrigidi为第一作者)在Cell在线发表题为“GenomicDecodingofNeuronal......

研究揭示血脑屏障控制蚂蚁行为的生物学机制

美国宾夕法尼亚大学佩雷尔曼医学院科研人员发现,蚂蚁的血脑屏障在控制其行为方面起着积极的作用。血脑屏障可以调节蚂蚁大脑中的激素水平,从而影响他们在蚁群中的行为。相关研究成果发表在《Cell》杂志上。研究......

2023年张锋团队发表4篇Nature,Science及Cell

RNA引导系统利用引导RNA和靶核酸序列之间的互补性来识别遗传元件,在原核生物和真核生物的生物过程中都起着核心作用。例如,原核CRISPR-Cas系统为细菌和古细菌提供了对外来遗传因子的适应性免疫。C......

Cell:新研究有助于确定使我们成为人类的基因变化

大约700万年前,人类从我们最接近的动物亲戚黑猩猩那里分离出来,在进化树上形成了我们自己的分支。在此后的时间里---从进化的角度看是短暂的---我们的祖先进化出了使我们成为人类的性状,包括比黑猩猩大得......