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1.
生物活组织的背向二次谐波成像   总被引:5,自引:0,他引:5  
光学二次谐波成像技术由于具有三维高分辨率、不需要荧光标记、对生物样品的杀伤效应小等特点,在生物医学研究上具有广阔的应用前景.在双光子荧光成像基础上,实现了适合对厚组织样品观测的背向光学二次谐波成像,探讨了背向二次谐波成像的特点和影响因素.通过对多种生物组织样品进行大量实验,发现胶原纤维和肌肉纤维均可以产生很强的背向二次谐波,并成功地将背向二次谐波成像技术应用于糖尿病患者皮肤的观测.背向二次谐波成像技术可望推广到病理检查等临床应用中.  相似文献   

2.
双光子荧光探针被广泛研究应用于生物医学成像和治疗,深入了解这类探针在生物组织中激发分布特征及其相对于单光子探针的成像优势和劣势对探针的合理选择和应用具有指导意义。然而,由于实际测量难以避开众多干扰因素的影响,因此不能准确反映其固有特征。本文选取典型生物和荧光激发参数,利用生物仿真定量分析,并通过双光子和单光子的激发成像对比,获取了双光子荧光的基本激发特征。结果发现,在相同平圆光束激发下,双光子激发由于激发效率低且需要双光子吸收,再加上较高的激发阈值,虽然激发光在组织穿透深度方面存在优势,但在组织内衰减速率快、有效穿透深度比高量子效率的单光子荧光激发浅。同时,深度方向的快速衰减会导致横向激发光能的非均匀性分布,这种非均匀性对双光子荧光影响更大。仿真分析进一步表明:在生物组织耐受的前提下提高双光子激发的功率更有利于荧光成像;增加光照半径可以减弱横向激发的不均匀性,从而改善双光子荧光成像的效果。本研究结果为双光子荧光激发、成像的应用提供了基础数据参考,本仿真方法也为快速研究光与生物组织的相互作用提供了借鉴。  相似文献   

3.
为了对双光子显微成像系统的群延迟色散进行校正,提高双光子激发效率的目的,采用自相关仪测量的方法在自行搭建的双光子系统光路的四个位置测量飞秒激光的脉冲展宽情况,测量样品位置5个波长下最优的群延迟色散补偿值,由此拟合得到自搭建双光子系统的全波段群延迟色散补偿曲线。实验结果表明在应用此群延迟色散补偿曲线后样品位置的脉冲宽度平均减小95 fs,在两个典型激发波长(750 nm和900 nm)生物样品的荧光强度分别提高了42.7%和76.8%。结论为双光子激发效率与飞秒激光的脉冲宽度成线性反比关系。  相似文献   

4.
双光子激发荧光显微是一种非线性光学显微技术,它结合了激光扫描共聚焦显微镜和双光子激发技术,具有高时空分辨率、高信噪比和固有的三维层析分辨能力等优点。介绍了双光子显微镜的软硬件组成和技术参数,样品制备方法,双光子图像采集的常用操作规程,日常维护和仪器管理等方面。旨在为双光子仪器的使用者与管理者提供参考,使之更好地服务于教学与科研。  相似文献   

5.
建立了流式细胞仪和双光子激光共聚焦荧光显微镜进行定性和定量检测小鼠巨噬细胞吞噬鸡红细胞的方法,并同传统光学显微镜细胞化学染色观察方法相比较,探讨其检测巨噬细胞吞噬效应的优越性。常规方法获取小鼠腹腔和脾脏巨噬细胞,制备巨噬细胞悬液。常规制备鸡红细胞,计数并调整活细胞数,用5-二醋酸羧基荧光素琥珀酸单胞菌酯(5-carboxyfluorescein diacetate succinimidyl ester,CFSE)染色,与巨噬细胞共温育一定时间后,小鼠巨噬细胞特异性荧光抗体F4/80标记巨噬细胞。应用流式细胞仪检测巨噬细胞中CFSE阳性百分率来表示巨噬细胞吞噬率;应用双光子显微镜观察被吞噬的CFSE阳性鸡红细胞动态分布情况。同时,采用传统光学显微镜吉姆萨染色观察巨噬细胞吞噬百分率。结果显示,流式细胞仪结合双光子显微镜检测巨噬细胞吞噬率与传统的显微镜计数法比较,两者有明显的正相关性。双光子显微镜和流式细胞仪可以定性与定量检测巨噬细胞吞噬功能,该方法具有灵敏、快捷、重复性好以及准确率高的特点,是进行免疫学研究的可行方法。  相似文献   

6.
活体细胞内双光子激发的光漂白特性   总被引:5,自引:0,他引:5  
长波长光的强穿透能力和对活体细胞和生物组织光毒性很小的特性,使得双光子激发荧光显微术已经成为无损伤成像的重要工具.可是双光子激发的高光子密度可能会产生高次光子相互作用, 从而产生更快的光漂白.从实验上研究了离体和活体细胞内的若丹明123和若丹明B分别在单光子激发和双光子激发时的光漂白特性.在体的实验结果与离体的实验结果一致.正如期望的一样,单光子激发时光漂白速率非常近似地随着激发功率的增加而线性增加.可是,双光子激发时的光漂白速率并不是正比于激发功率的平方,而是正比于激发功率的高次方(>3.5).对绿色荧光蛋白(GFP)变异体CFP和YFP的实验也得到同样的结果,这就表明高次光漂白可能是双(多)光子激发中的普遍现象.因此多光子的应用可能会受到强光漂白的限制.  相似文献   

7.
双色双光子激光扫描显微技术可以用来研究生物组织内两种不同蛋白质的表达、定位和示踪.由于大多数双光子显微镜一次只能提供一种波长的激发光,双色同时成像较难实现.mAmetrine和mKate2作为新发现的荧光蛋白对可以用于双光子双色同时成像,这得益于它们各自的优势:mAmetrine的斯托克斯位移和mKate2的高亮度.在765nm的波长激发时,它们的双光子吸收效率都很高.mAmetrine和mKate2能够很好地用于双色双光子活细胞成像实验.  相似文献   

8.
吴淑莲  李晖  谢树森 《激光生物学报》2009,18(3):320-323,369
使用强脉冲光源(IPLs)作用于小鼠皮肤上,分别用普通显微镜、双光子显微镜(TPELSM)观察、分析在IPLs作用前后及不同能量密度下皮肤组织的结构.基于pennes生物传热方程,计算光子在皮肤组织中传输所吸收的热量引起组织升温达到的温度,与实验结果相吻合.  相似文献   

9.
目的:用二次谐波成像结合双光子荧光成像的方法观察人源胶原蛋白透皮吸收的情况。方法:将荧光标记的人源胶原蛋白(1 mg/mL)涂抹于小鼠表皮层经皮肤吸收1 h后用背向二次谐波观察皮肤内胶原纤维作为真皮层定位标志,用双光子扫描共聚焦显微镜观察人源胶原蛋白透皮吸收深度,吸收方式。结果:二次谐波成像结合双光子荧光成像表明人源胶原蛋白透皮吸收1 h后可观察到荧光信号沿着毛囊聚集,并有部分荧光分子由毛囊扩散至真皮层。结论:二次谐波可以更快速,更灵敏地检测皮肤中的胶原纤维,以此作为检测物质透皮吸收深度的定位标志,具有不受荧光信号干扰的优点。人源胶原蛋白可以沿着毛囊进入真皮层,并从毛囊中扩散至胶原纤维层从而补充皮肤中的胶原纤维。  相似文献   

10.
本文利用多光子激发激光扫描显微镜的部分光路和探测器.建立了双光子荧光相关谱系统(Two-Photo Fluorescence Correlation Spectroscopy.简称TP-FCS)。利用TP-FCS系统观察到了“光子爆发”现象.实现了染料分子的双光子激发,测量出若丹明B染料分子在蔗糖溶液中的扩散系数。实验证明该系统具有操作简便、可靠性高,费用低廉等等点,可实现单分子检测。  相似文献   

11.
We find that several key endogenous protein structures give rise to intense second-harmonic generation (SHG)—nonabsorptive frequency doubling of an excitation laser line. Second-harmonic imaging microscopy (SHIM) on a laser-scanning system proves, therefore, to be a powerful and unique tool for high-resolution, high-contrast, three-dimensional studies of live cell and tissue architecture. Unlike fluorescence, SHG suffers no inherent photobleaching or toxicity and does not require exogenous labels. Unlike polarization microscopy, SHIM provides intrinsic confocality and deep sectioning in complex tissues. In this study, we demonstrate the clarity of SHIM optical sectioning within unfixed, unstained thick specimens. SHIM and two-photon excited fluorescence (TPEF) were combined in a dual-mode nonlinear microscopy to elucidate the molecular sources of SHG in live cells and tissues. SHG arose not only from coiled-coil complexes within connective tissues and muscle thick filaments, but also from microtubule arrays within interphase and mitotic cells. Both polarization dependence and a local symmetry cancellation effect of SHG allowed the signal from species generating the second harmonic to be decoded, by ratiometric correlation with TPEF, to yield information on local structure below optical resolution. The physical origin of SHG within these tissues is addressed and is attributed to the laser interaction with dipolar protein structures that is enhanced by the intrinsic chirality of the protein helices.  相似文献   

12.
Fu Y  Wang H  Shi R  Cheng JX 《Biophysical journal》2007,92(9):3251-3259
Sum frequency generation (SFG) and second harmonic generation (SHG) were observed from helical fibrils in spinal cord white matter isolated from guinea pigs. By combining SFG with coherent anti-Stokes Raman scattering microscopy, which allows visualization of myelinated axons, these fibers were found to be distributed near the surface of the spinal cord, between adjacent axons, and along the blood vessels. Using 20-microm-thick tissue slices, the ratio of forward to backward SHG signal from large bundles was found to be much larger than that from small single fibrils, indicating a phase-matching effect in coherent microscopy. Based on the intensity profiles across fibrils and the size dependence of forward and backward signal from the same fibril, we concluded that the main SHG signal directly originates from the fibrils, but not from surface SHG effects. Further polarization analysis of the SHG signal showed that the symmetry property of the fibril could be well described with a cylindrical model. Colocalization of the SHG signal with two-photon excitation fluorescence (TPEF) from the immunostaining of glial fibrillary acidic protein demonstrated that SHG arises from astroglial filaments. This assignment was further supported by colocalization of the SHG contrast with TPEF signals from astrocyte processes labeled by a Ca(2+) indicator and sulforhodamine 101. This work shows that a combination of three nonlinear optical imaging techniques--coherent anti-Stokes Raman scattering, TPEF, and SHG (SFG) microscopy--allows simultaneous visualization of different structures in a complex biological system.  相似文献   

13.
In this study multiphoton tomography, based on second harmonic generation (SHG), and two-photon-excited fluorescence (TPEF) was used to visualize both the extracellular matrix and tumor cells in different morphological and molecular subtypes of human breast cancer. It was shown, that quantified assessment of the SHG based imaging data has great potential to reveal differences of collagen quantity, organization and uniformity in both low- and highly- aggressive invasive breast cancers. The values of quantity and uniformity of the collagen fibers distribution were significantly higher in low-aggressive breast cancer compared to the highly-aggressive subtypes, while the value representing collagen organization was lower in the former type. Additionally, it was shown, that TPEF detection of elastin fibers and amyloid protein may be used as a biomarker of detection the low-aggressive breast cancer subtype. Thus, TPEF/SHG imaging offers the possibility of becoming a useful tool for the rapid diagnosis of various subtypes of breast cancer during biopsy as well as for the intraoperative determinination of tumor-positive resection margins.  相似文献   

14.
二次谐波显微成像技术   总被引:1,自引:0,他引:1  
二次谐波非线性显微成像技术是近年发展起来的一种新型光学成像方法,已广泛应用于生物医学的各个领域。介绍了光学二次谐波产生的原理、成像装置及其技术发展,描述了二次谐波的成像特点和它与双光子荧光成像的异同,并对其在生物医学上的应用及发展前景做出展望。  相似文献   

15.
Second-order nonlinear optical imaging of chiral crystals (SONICC), which portrays second-harmonic generation (SHG) by noncentrosymmetric crystals, is emerging as a powerful imaging technique for protein crystals in media opaque to visible light because of its high signal-to-noise ratio. Here we report the incorporation of both SONICC and two-photon excited fluorescence (TPEF) into one imaging system that allows visualization of crystals as small as ~10 μm in their longest dimension. Using this system, we then documented an inverse correlation between the level of symmetry in examined crystals and the intensity of their SHG. Moreover, because of blue-green TPEF exhibited by most tested protein crystals, we also could identify and image SHG-silent protein crystals. Our experimental data suggest that the TPEF in protein crystals is mainly caused by the oxidation of tryptophan residues. Additionally, we found that unspecific fluorescent dyes are able to bind to lysozyme crystals and enhance their detection by TPEF. We finally confirmed that the observed fluorescence was generated by a two-photon rather than a three-photon process. The capability for imaging small protein crystals in turbid or opaque media with nondamaging infrared light in a single system makes the combination of SHG and intrinsic visible TPEF a powerful tool for nondestructive protein crystal identification and characterization during crystallization trials.  相似文献   

16.
We characterized several cellular and structural features of early stage Type II/III atherosclerotic plaques in an established model of atherosclerosis—the ApoE-deficient mouse—by using a multimodal, coregistered imaging system that integrates three nonlinear optical microscopy (NLOM) contrast mechanisms: coherent anti-Stokes Raman scattering (CARS), second harmonic generation (SHG), and two-photon excitation fluorescence (TPEF). Specifically, the infiltration of lipid-rich macrophages and the structural organization of collagen and elastin fibers were visualized by CARS, SHG, and TPEF, respectively, in thick tissue specimens without the use of exogenous labels or dyes. Label-free CARS imaging of macrophage accumulation was confirmed by histopathology using CD68 staining. A high-fat, high-cholesterol Western diet resulted in an approximate 2-fold increase in intimal plaque area, defined by CARS signals of lipid-rich macrophages. Additionally, analysis of collagen distribution within lipid-rich plaque regions revealed nearly a 4-fold decrease in the Western diet–fed mice, suggesting NLOM sensitivity to increased matrix metalloproteinase (MMP) activity and decreased smooth muscle cell (SMC) accumulation. These imaging results provide significant insight into the structure and composition of early stage Type II/III plaque during formation and allow for quantitative measurements of the impact of diet and other factors on critical plaque and arterial wall features.  相似文献   

17.

Background

The confirmatory diagnosis of Osteogenesis Imperfecta (OI) requires invasive, commonly bone biopsy, time consuming and destructive methods. This paper proposes an alternative method using a combination of two-photon excitation fluorescence (TPEF) and second-harmonic generation (SHG) microscopies from easily obtained human skin biopsies. We show that this method can distinguish subtypes of human OI.

Methodology/Principal Findings

Different aspects of collagen microstructure of skin fresh biopsies and standard H&E-stained sections of normal and OI patients (mild and severe forms) were distinguished by TPEF and SHG images. Moreover, important differences between subtypes of OI were identified using different methods of quantification such as collagen density, ratio between collagen and elastic tissue, and gray-level co-occurrence matrix (GLCM) image-pattern analysis. Collagen density was lower in OI dermis, while the SHG/autofluorescence index of the dermis was significantly higher in OI as compared to that of the normal skin. We also showed that the energy value of GLCM texture analysis is useful to discriminate mild from severe OI and from normal skin.

Conclusions/Significance

This work demonstrated that nonlinear microscopy techniques in combination with image-analysis approaches represent a powerful tool to investigate the collagen organization in skin dermis in patients with OI and has the potential to distinguish the different types of OI. The procedure outlined in this paper requires a skin biopsy, which is almost painless as compared to the bone biopsy commonly used in conventional methods. The data presented here complement existing clinical diagnostic techniques and can be used as a diagnostic procedure to confirm the disease, evaluate its severity and treatment efficacy.  相似文献   

18.

Background

The engineering of functional tissues is a complex multi-stage process, the success of which depends on the careful control of culture conditions and ultimately tissue maturation. To enable the efficient optimization of tissue development protocols, techniques suitable for monitoring the effects of added stimuli and induced tissue changes are needed.

Methodology/Principal Findings

Here, we present the quantitative use of two-photon excited fluorescence (TPEF) and second harmonic generation (SHG) as a noninvasive means to monitor the differentiation of human mesenchymal stem cells (hMSCs) using entirely endogenous sources of contrast. We demonstrate that the individual fluorescence contribution from the intrinsic cellular fluorophores NAD(P)H, flavoproteins and lipofuscin can be extracted from TPEF images and monitored dynamically from the same cell population over time. Using the redox ratio, calculated from the contributions of NAD(P)H and flavoproteins, we identify distinct patterns in the evolution of the metabolic activity of hMSCs maintained in either propagation, osteogenic or adipogenic differentiation media. The differentiation of these cells is mirrored by changes in cell morphology apparent in high resolution TPEF images and by the detection of collagen production via SHG imaging. Finally, we find dramatic increases in lipofuscin levels in hMSCs maintained at 20% oxygen vs. those in 5% oxygen, establishing the use of this chromophore as a potential biomarker for oxidative stress.

Conclusions/Significance

In this study we demonstrate that it is possible to monitor the metabolic activity, morphology, ECM production and oxidative stress of hMSCs in a non-invasive manner. This is accomplished using generally available multiphoton microscopy equipment and simple data analysis techniques, such that the method can widely adopted by laboratories with a diversity of comparable equipment. This method therefore represents a powerful tool, which enables researchers to monitor engineered tissues and optimize culture conditions in a near real time manner.  相似文献   

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