• <tr id="yyy80"></tr>
  • <sup id="yyy80"></sup>
  • <tfoot id="yyy80"><noscript id="yyy80"></noscript></tfoot>
  • 99热精品在线国产_美女午夜性视频免费_国产精品国产高清国产av_av欧美777_自拍偷自拍亚洲精品老妇_亚洲熟女精品中文字幕_www日本黄色视频网_国产精品野战在线观看 ?

    Whole Brain Imaging of Larval Zebrafish during Rheotaxis

    2022-09-22 02:42:06WUYuBinZHANGRenChangLIDaGuangQIKeXinCHAIYuMingSHENChenSIGuangWeiWENQuan

    WU Yu-Bin,ZHANG Ren-Chang,LI Da-Guang,QI Ke-Xin,CHAI Yu-Ming,SHEN Chen,SI Guang-Wei*,WEN Quan

    (1)Chinese Academy of Sciences Key Laboratory of Brain Function and Diseases,Division of Life Science,University of Science and Technology of China,Hefei 230026,China;2)State Key Laboratory of Brain and Cognitive Science,Institute of Biophysics,Chinese Academy of Sciences,Beijing 100101,China;3)Hefei National Laboratory for Physical Sciences at the Microscale,Center for Integrative Imaging,University of Science and Technology of China,Hefei 230026,China;4)School of Data Science,University of Science and Technology of China,Hefei 230026,China)

    Abstract Objective Rheotaxis,namely to orient and swim against the water flow,is a conserved behavior across most fish and amphibians.While the study of rheotaxis behavior has a relatively long history,and in recent years the behavioral algorithm of rheotaxis has been described,how distributed neural circuits integrate multisensory information,make decisions,and generate counterflow motor sequences remain largely unknown.Whole brain calcium imaging of larval zebrafish during rheotaxis would provide a unique opportunity to tackle this difficult problem.Methods To this end,we developed a microfluidic device that can precisely control the water flow and elicit rheotaxis behavior.By integrating the chip with a customized light field tracking microscope,we built a system to record whole brain neural activity in freely behaving larval zebrafish during rheotaxis.Results Larval zebrafish showed reliable rheotaxis behavior in the setup,represented by prominent positional holding and counterflow swimming bouts in water flow.In the meanwhile,we successfully recorded zebrafish whole brain neural activity,from which a few brain regions were identified whose calcium signals strongly correlated with rheotaxis behavior.Conclusion Our study,for the first time,demonstrates a method for imaging whole brain neural activity in larval zebrafish while the animal is performing rheotaxis.Future analysis and modelling of the neural activity and behavioral data will deepen our understanding of sensorimotor transformation in this important naturalistic behavior.

    Key words rheotaxis,larval zebrafish,microfluidics,light field microscope

    Rheotaxis,an innate and conserved behaviour in many aquatic animals[1],is of great importance to animal survival.For example,salmon would swim against water stream to return to their birthplace to lay eggs[2];small fish living on plankton often hold their position by facing upstream to intercept food carried by the current[3].The commonality of rheotaxis and the fact that it involves the integration of multiple sensory(visual,hydromechanical,etc.)cues[4]have drawn the attention of many systems neuroscientists.

    The sensory basis of rheotaxis has been investigated extensively.It has been shown that fish can detect flow-induced displacement of themselves by using visual cues[5].Researchers have also discovered that when deprived of visual cues,larval zebrafish can still consistently perform body orientation and position holding in water flow by using the mechanosensory information detected by the lateral line[6].Despite these insights,it remains unclear how larval zebrafish exploit visual and hydromechanical cues in their brains to reach the adaptive decision to swim against the direction of the water flow.Most studies on rheotaxis of larval zebrafish were carried out either by behaviour tests[4,6-7]or by brain imaging of immobilized fish[8-9],neither of which alone is sufficient to reveal the neural mechanisms underlying the generation of rheotaxis.

    Whole brain imaging in a freely behaving animal is an emerging frontier in systems neuroscience,holding the potential for revealing brain dynamics and naturalistic animal behaviors and their relationships at multiple spatiotemporal scales[10].Continuous efforts have been made to image larval zebrafish’s whole brain activity while the animal is performing behaviors,ranging from navigation to foraging,but all in zero-flow environment[11-15].Microfluidics,with the advantages in precise stimuli control,has proven to be an ideal platform to study sensorimotor transformation in brains of small organisms[16],including larval zebrafish[17-19].Previous microfluidic applications have demonstrated reliable and precise control of hydrodynamics surrounding larval zebrafish[8,20].However,the existing microfluidic designs either immobilize the fish in the channel[8]or are not compatible with the tracking microscope[20].

    In this study,we developed a novel microfluidic structure,and integrated it with the extended field of view light field microscope(XLFM)[12]to study rheotaxis of freely-swimming larval zebrafish.We showed that larvae zebrafish could display rheotactic behavior in the presence of 488 nm blue laser illumination and movements of the tracking stage.We successfully captured whole brain activity of larval zebrafish while it was performing rheotaxis and identified a few brain regions that are possibly involved in this behavior.

    1 Materials and methods

    1.1 Zebrafish preparation and behavioral experiments

    Zebrafish(Danio rerio)larvae of either sex,carrying the transgene elavl3:H2B-GCaMP8s(a gift from Dr.Ahrens Misha at Janelia Research Campus,HHMI)were generated and maintained at 28.5°C on a 14 h on/10 h off light cycle.All Experiments were conducted in zebrafish of nacre background[21].Larval zebrafish were maintained at 28.5℃in 0.5×E2 embryo media and fed with paramecium.Adult zebrafish were maintained,fed,mated as previously described[12].

    Larvae zebrafish at five to nine days postfertilization(d.p.f)were transferred into our custombuilt microfluidic chamber hooked up to a glass container filled with embryo media.The container was fixed at a certain height and water flow was driven by compressed air.The flow rate was tuned using a pressure regulator(MFCS,Fluigent Inc.)and monitored in real time by a flow sensor(Flow unit,Fluigent Inc.).We used a perfusion controller(Valvelink8.2,Autom8 Inc.)to switch on and off the flow,synchronized with image acquisition.The microfluidic chip was placed upside down on the stage and illuminated by a homemade IR LED ring(Figure 1a).During experiments,we delivered water flow from one side of the arena to elicit rheotactic behavior in larval zebrafish.We used a customized tracking system to track the movement of larval zebrafish and a low magnification camera underneath the microfluidic chamber to perform behavior recording[12].

    1.2 Microfluidic device

    The microfluidic device has a behavior arena with dimensions of 2 cm(W)×5 mm(D)×0.8 mm(H)(Figure 1b),allowing larval zebrafish to freely swim and turn inside the chip.Pillars are constructed at each end to prevent fish from escaping.A side channel is designed to load fish into the arena.The layout is designed using SolidWorks(Dassault Systèmes,Inc.),and the design file is publicly available(File S1).

    To fabricate this device,the design file was 3D printed(MicroArch s140,Boston Micro Fabrication)with HTL resin to make a high-resolution master mold.Then,the reagent polydimethylsiloxane(PDMS)elastomer base and curing agent were mixed at a 10∶1(w/w)ratio and de-bubbled,and the mixture was cast onto the 3D-printed master mold with a negative replica design of the device followed by degassing for around 30 minutes.The PDMS was cured at 65°C overnight,after which it was cut out and peeled off the master mold.Inlet and outlet with a diameter of~1 mm were punched respectively at either side of the chamber.A hole of~4 mm in diameter was made at the inlet of the loading channel.Finally,the PDMS was bonded to a flat glass slide with the aid of air plasma and baked at 65℃overnight.

    1.3 Whole-brain calcium imaging and image reconstruction

    Neural activity was recorded with our custombuilt light field microscope as previously described[12].Calcium indicator across the whole zebrafish brain was excited simultaneously by a 488 blue laser with an illumination area of~1.44 mm in diameter.The fluorescence emission was collected by a high NA objective and transmitted through a dichroic mirror and a pair of achromatic lenses before reaching the customized lenslet array.The dichroic mirror and achromatic lenses were placed in a way that the objective’s back pupil is conjugated onto the lenslet array.The customized lenslet array consists of an aluminum plate with 27 holes and 27 customized micro-lenses housed within these holes.An sCMOS camera was positioned behind the lenslet array to collect transmitted fluorescence.We developed an iterative reconstruction algorithm to reconstruct 3D fluorescence stacks(600×600×250)from the acquired 2D images(2 048×2 048).This algorithm was derived from the classical Richardson-Lucy deconvolution method,which requires an experimentally measured point spread function(PSF)of the XLFM system.

    1.4 Volumetric image registration and neural activity analysis

    The whole brain neural activity was extracted from the reconstructed 3D image stacks acquired by the XLFM system.First,we cropped and resized the original image stack(from 600×600×250 to 308×315×210)and aligned them to the standard atlas“zbb”[22].Next,to obtain relatively stable and reliable regions of interests(ROI)across volumes,we performed 3D intensity-based rigid registration on each volume by using the computational morphometry toolkit(CMTK)[23]with the criteria of“correlation ratio”[24].After voxel registration,we computed pairwise correlation between nearby voxel intensities.The correlation map was used to cluster and segment voxels(watershed algorithm)into consistent ROIs across all volumes.The fluorescence signals,averaged over voxels within each ROI,were calculated.Finally,we adopted the“OASIS”[25]deconvolution method to denoise and to infer neural activity from the fluorescence time sequence.

    1.5 Tracking

    To track the position and heading of larval zebrafish onx-yplane under our high NA imaging objective,a high-speed camera(2 ms exposure time,300 fps or higher,Basler aca2000-340kmNIR,Germany)and horizontally-motorized stages were used as previously described[12].First,with the aid of OpenCV 3.4,a C/C++based real time system was used to detect and identify head positions,after which the error signal between actual head position and the set point was transmitted into the PID to generate output signals that control the movements of a motorized stage.

    To track the axial movements of larval zebrafish,the principle of light field microscope was applied.We used an autofocus camera behind a twodimensional microlens array to capture quintuple images of larval zebrafish from different perspectives.Movements of zebrafish alongzaxis will cause the inter-fish distance,namely the distance between the centroids of the fish head in the left and right subimages,to change.We used pairwise correlation between sub-images to compute the distance shift.As the distance varies linearly with axial movements,thezposition of larval zebrafish can be calculated by multiplying the inter-fish distance with a pre-factor.The error signal between the actual axial position and the set point was used to generate an output signal that drives a piezo-coupled fish container.The autofocus control system was developed using LabVIEW.

    1.6 Microparticle imaging velocimetry

    Particle tracking velocimetry(PTV)was used to map the flow velocity profile in the behavior arena.The microfluidic chip was set up in a configuration similar to the experimental conditions.0.45-μmdiameter fluorescent polystyrene latex microbeads(NFPPS,Spherotech Inc.)were suspended at a concentration of 105/ml.The trajectory of the fluorescent microbeads was imaged with a spinning disk confocal microscope(Dragonfly,Andor Inc.)and analyzed with custom MATLAB(Natick,MA,US)code.

    1.7 Statistics and cross-correlation

    We used bootstrap to test whether the difference between bouts number under flow-on and flow-off conditions are statistically significant for individual fish.We calculated the difference between the means of two bout number distributions;then the two distributions were shuffled and a new difference in means was calculated.This procedure was repeated 10 000 times and theP-value,namely the probability of finding the difference of the means in the original dataset,was calculated.The results were presented in the form of the average bouts per second±SEM(standard error of mean).A similar approach is used to test the statistical difference between the fraction of bout time under flow-on and flow-off conditions.

    In order to find out which brain regions are related to rheotactic behavior,we labeled each calcium image volume with‘0’or‘1’according to whether a rheotactic behavior was present or not at that volume,resulting in a binarized time series.We then calculated the Pearson’s linear correlation coefficients between the calcium signal and the binarized time series using student’s t distribution[26].The correlation coefficients were calculated for calcium signal in each segmented brain region(or ROI),and we ranked the correlation coefficients of each ROI from high to low,with the highest reaching 0.49.Regions with correlation coefficients above 0.29 were presented in Figure 4.

    2 Results

    2.1 Combining microfluidics device with the extended field of view light field microscope(XLFM)to study rheotaxis

    The investigation of brain-wide activity during rheotaxis requires the ability to effectively elicit rheotactic behaviour in larval zebrafish while performing calcium imaging in freely moving animal.To this end,we designed a 3D-printed microfluidic device that could be integrated with our custom-built light field microscope(XLFM)(Figure 1a).

    Experimental procedures are shown in Figure 1c.We loaded a 5-9 d.p.f.zebrafish larva,through a side channel,into a microfluidic chamber,the size of which was designed to allow fish swimming and turning freely within the chip(Figure 1c).The microfluidic chip was connected to an embryo media source for water delivery,controlled by a pinch valve.When the valve turned on,a flow velocity gradient perpendicular to the flow direction was immediately established inside the chamber(Figure 1c).The flow velocity profile,measured by Particle Tracking Velocimetry,exhibited a symmetric parabolic shape(Figure 1d),consistent with fluid mechanics calculation.By adjusting the pressure applied to the liquid source,we found that a net flow speed around 1.8 mm/s in the chamber was enough to evoke rheotactic behavior in zebrafish.

    Fig.1 Experimental setup for whole brain imaging of larval zebrafish during rheotaxis

    2.2 Prominent counterflow swimming behavior could be evoked in our whole brain imaging system

    During rheotaxis,larval zebrafish first reorients itself along the water current,and then displays position holding by performing counterflow swim bouts[4].Here,we identified and labelled video frames based on behavior types(Figure 2a).Larval zebrafish exhibited bouts toward or away from the water flow,and also made turns within the microfluidic channel(Figure 2b,Video S1 and Video S2).After the flow turned on,the fish reoriented itself from downstream to upstream direction,followed by frequent upstream bouts(Figure 2a).The behavior sequence demonstrated typical rheotactic behavior.

    To further examine whether zebrafish could reliably exhibit counterflow swimming behavior characteristic of rheotaxis under our imaging set up,we compared swim bouts in the presence and absence of water flow,as well as toward and away from the applied current direction.To rule out potential bias,we compared the frequencies of swim bouts(left panels in Figure 3a-d)under flow-on and flow-off conditions when larval zebrafish was facing the same direction.We present results when the flow and the fish movement were in opposite directions(Figure 3a,c)or in the same direction(Figure 3b,d)respectively,finding that counterflow swim bout frequency was significantly higher than that in the absence of water flow,consistent with positive rheotaxis behavior.We also calculated the fraction of time larval zebrafish spent on swimming against the water flow,and found clear position holding during the application of water flow(right panels in Figure 3a-d)

    2.3 Whole brain imaging of larval zebrafish during rheotaxis

    Next,we conducted whole brain calcium imaging while water flow was applied to elicit rheotaxis.The zebrafish brain exhibited rich spatiotemporal neural dynamics while the flow switched on and off(Video S3).Using crosscorrelation analysis between behavior and neural activity,we identified several brain regions that showed significantly elevated activity during periods of counterflow swim bouts.Regions activated were found in telencephalon,optical tectum and hindbrain(Figure 4,color coded areas).Figure 4 below shows calcium signal from one example fish.

    Fig.2 Behavior sequence of larval zebrafish rheotaxis

    Fig.3 Larval zebrafish display prominent rheotactic behavior

    Fig.4 Whole brain imaging of larval zebrafish during rheotaxis

    3 Discussion

    We have developed an integrated system in which both the rheotactic behavior and brain-wide calcium activity of larval zebrafish could be recorded simultaneously.The design of microfluidic device enabled us to expose larval zebrafish to precisely controlled water flow,and it turned out that both the blue laser,which could interfere the visual system,and the movement of our tracking stage had little effect on the rheotaxis behavior.We successfully recorded brain-wide neural activity during rheotaxis and located brain regions with rising activity correlated with rheotactic behavior.

    An animal’s brain usually has dynamic internal states that switch between each other[15].Larval zebrafish clearly showed two distinct phases when engaging in and disengaging from rheotaxis,characterized by counterflow swim bouts,suggesting that state-encoding neural population may be responsible for the maintenance of rheotactic behavior.The brain regions identified in our study showed elevated calcium signals not only during rheotaxis but also at times when water flow was not applied(Figure 4),indicating that these regions may not be involved in state encoding,and their activity may just reflect a correlation with swim bouts.Thus,more experiments and more sophisticated analysis are needed to reveal brain regions that are essential for triggering and maintaining rheotaxis.

    We observed prominent counterflow swimming sequences and position holding behavior during the application of water flow in our microfluidic device.We did capture several reorientation events in larval zebrafish,but overall the event was not commonly seen.As larval zebrafish could perform reorientation in much narrower microfluidic chip[20],the size of our chip is big enough for zebrafish larvae to freely turn and swim.We reasoned that the less frequent occurrence of turning events might be attributed to the relatively slow speed of water flow.Although our applied water flow could trigger prominent counterflow swim bouts,the elicitation of turning behavior may require higher flow speed,as previously reported[20].Besides,we found that the frequency of rheotactic behavior dropped as time went by,and near the end of an experiment,it became relatively hard to elicit typical rheotactic behavior with the applied water flow.We suspect that zebrafish larvae would become more and more familiar with the microfluidic chamber and fatigue may build up during an experiment.To more effectively evoke rheotactic behavior in larval zebrafish,we will redesign the microfluidic chip,making it compatible with higher speed water flow in the future study.

    To our knowledge,the current study was the first to report brain-wide neural activity during rheotaxis in larval zebrafish.Before our study,possible behavior mechanisms as well as circuit models have been proposed[6,9].Our set up could therefore provide a useful platform to test existing models and uncover unknown brain regions and neural mechanisms for sensorimotor transformation during zebrafish rheotaxis.

    4 Conclusion

    By integrating microfluidics with light field tracking microscopy,we successfully recorded whole brain neural activity in larval zebrafish while the animal was performing rheotaxis behavior in a precisely controlled flow environment.Larval zebrafish exhibited current-evoked position holding behavior and persistent counterflow swim bouts.Neural activity in three brain regions,namely telencephalon,optical tectum,and hindbrain,were found to be highly correlated with the rheotaxis behavior.Further imaging data analysis and modeling will help elucidate neural mechanisms for sensorimotor transformation in this important naturalistic behavior.

    SupplementaryAvailable online(http://www.pibb.ac.cn or http://www.cnki.net):

    PIBB_20220354_File S1.stl

    PIBB_20220354_Video S1.avi

    PIBB_20220354_Video S2.avi

    PIBB_20220354_Video S3.mp4

    国产欧美日韩综合在线一区二区| 在线观看免费日韩欧美大片| 亚洲男人天堂网一区| 侵犯人妻中文字幕一二三四区| 国产片内射在线| 日产精品乱码卡一卡2卡三| 另类亚洲欧美激情| 久久久久久免费高清国产稀缺| 午夜免费鲁丝| 美女主播在线视频| 国产一区二区三区综合在线观看| 久久久久久久大尺度免费视频| 久久午夜福利片| 日韩制服骚丝袜av| 在线天堂最新版资源| 久久久a久久爽久久v久久| 丰满饥渴人妻一区二区三| 97人妻天天添夜夜摸| 中国三级夫妇交换| 你懂的网址亚洲精品在线观看| 久久久国产欧美日韩av| 色播在线永久视频| 日韩制服骚丝袜av| 精品国产一区二区三区久久久樱花| 亚洲少妇的诱惑av| 大片免费播放器 马上看| 精品久久久久久电影网| 欧美日韩综合久久久久久| 国产亚洲av片在线观看秒播厂| 又黄又粗又硬又大视频| 亚洲综合色网址| 午夜福利网站1000一区二区三区| 日韩精品免费视频一区二区三区| 春色校园在线视频观看| 亚洲av福利一区| 久久免费观看电影| 免费看不卡的av| 妹子高潮喷水视频| 国产成人免费无遮挡视频| 日韩一卡2卡3卡4卡2021年| 中文字幕另类日韩欧美亚洲嫩草| 母亲3免费完整高清在线观看 | 你懂的网址亚洲精品在线观看| 一二三四在线观看免费中文在| 国产一区二区 视频在线| 成人18禁高潮啪啪吃奶动态图| 又大又黄又爽视频免费| 国产又色又爽无遮挡免| 亚洲三级黄色毛片| 天天影视国产精品| 精品人妻一区二区三区麻豆| 晚上一个人看的免费电影| 天天躁夜夜躁狠狠久久av| kizo精华| 美女视频免费永久观看网站| 久久99热这里只频精品6学生| 亚洲欧美成人综合另类久久久| 亚洲人成77777在线视频| 日韩免费高清中文字幕av| 美女xxoo啪啪120秒动态图| 久久影院123| 久久影院123| 国产精品三级大全| 哪个播放器可以免费观看大片| 欧美人与善性xxx| 香蕉精品网在线| 亚洲,一卡二卡三卡| 69精品国产乱码久久久| 国产午夜精品一二区理论片| 国产精品久久久久久精品电影小说| 欧美另类一区| 街头女战士在线观看网站| 国产成人一区二区在线| 天天影视国产精品| 中文字幕制服av| 高清不卡的av网站| 亚洲av男天堂| 美女大奶头黄色视频| 不卡视频在线观看欧美| 男人爽女人下面视频在线观看| 国产97色在线日韩免费| 久久av网站| videos熟女内射| 亚洲国产精品成人久久小说| 久久久久久久精品精品| 精品一区二区免费观看| 久久久久久久久久久久大奶| 欧美在线黄色| 水蜜桃什么品种好| 我的亚洲天堂| 视频区图区小说| 久久99一区二区三区| h视频一区二区三区| www.自偷自拍.com| 亚洲欧美一区二区三区国产| 卡戴珊不雅视频在线播放| 国产一区二区在线观看av| 亚洲一区二区三区欧美精品| 久久久久久久久久人人人人人人| 热99久久久久精品小说推荐| 亚洲精品中文字幕在线视频| 亚洲欧美一区二区三区久久| 七月丁香在线播放| 男女边摸边吃奶| 91精品三级在线观看| 99久久人妻综合| 最近2019中文字幕mv第一页| 最近中文字幕高清免费大全6| 国产亚洲午夜精品一区二区久久| 欧美精品一区二区免费开放| 日本wwww免费看| 成人国产麻豆网| 久久ye,这里只有精品| 在线观看免费高清a一片| 一级a爱视频在线免费观看| 最近2019中文字幕mv第一页| 欧美日韩一级在线毛片| 日韩制服骚丝袜av| 午夜福利在线免费观看网站| 伊人久久大香线蕉亚洲五| 成人二区视频| 在线亚洲精品国产二区图片欧美| 妹子高潮喷水视频| 秋霞在线观看毛片| 欧美日韩av久久| 日韩制服丝袜自拍偷拍| 午夜福利一区二区在线看| 亚洲精华国产精华液的使用体验| 欧美日本中文国产一区发布| 伦精品一区二区三区| 久久精品人人爽人人爽视色| 久久99一区二区三区| 美女主播在线视频| 国产亚洲午夜精品一区二区久久| 在线观看免费高清a一片| 777久久人妻少妇嫩草av网站| 久久精品久久久久久久性| 免费黄频网站在线观看国产| 欧美人与善性xxx| 亚洲一码二码三码区别大吗| 国产熟女午夜一区二区三区| 国产激情久久老熟女| 免费观看无遮挡的男女| 国产精品熟女久久久久浪| 一二三四在线观看免费中文在| 久久久欧美国产精品| 18在线观看网站| 久久久久久久久免费视频了| 女人高潮潮喷娇喘18禁视频| 男女边摸边吃奶| 亚洲av电影在线进入| 麻豆av在线久日| 日日撸夜夜添| 亚洲国产精品一区三区| 少妇猛男粗大的猛烈进出视频| 欧美精品av麻豆av| 热re99久久国产66热| 人妻少妇偷人精品九色| 国产欧美日韩一区二区三区在线| 精品卡一卡二卡四卡免费| 一级,二级,三级黄色视频| 精品一区二区免费观看| 夫妻午夜视频| 国产视频首页在线观看| 国产成人免费无遮挡视频| 亚洲三区欧美一区| 中文乱码字字幕精品一区二区三区| 国产精品免费大片| 国产片内射在线| videossex国产| 久久久久国产精品人妻一区二区| 久久久久久久大尺度免费视频| 成年动漫av网址| 久久久久久免费高清国产稀缺| 久久精品国产a三级三级三级| 日本黄色日本黄色录像| 亚洲欧美一区二区三区黑人 | 中文字幕人妻熟女乱码| 日韩一本色道免费dvd| 一区在线观看完整版| 日产精品乱码卡一卡2卡三| 亚洲欧美清纯卡通| 色播在线永久视频| 校园人妻丝袜中文字幕| 亚洲欧美清纯卡通| 热re99久久精品国产66热6| 精品人妻一区二区三区麻豆| 久久鲁丝午夜福利片| 超色免费av| 亚洲欧洲日产国产| 高清欧美精品videossex| www.自偷自拍.com| 不卡视频在线观看欧美| 最新的欧美精品一区二区| 有码 亚洲区| 女性被躁到高潮视频| 久久久a久久爽久久v久久| 久久久久久久久久人人人人人人| 国产精品一国产av| 飞空精品影院首页| 97精品久久久久久久久久精品| 国产熟女欧美一区二区| av有码第一页| 亚洲精品久久久久久婷婷小说| 日韩伦理黄色片| 在线观看美女被高潮喷水网站| 美女国产高潮福利片在线看| 日韩精品免费视频一区二区三区| 肉色欧美久久久久久久蜜桃| 97在线视频观看| 亚洲四区av| 一区二区日韩欧美中文字幕| 老鸭窝网址在线观看| 国产激情久久老熟女| 精品久久久久久电影网| 日韩 亚洲 欧美在线| 青春草视频在线免费观看| 肉色欧美久久久久久久蜜桃| 十分钟在线观看高清视频www| 国产精品久久久久成人av| 三上悠亚av全集在线观看| 大香蕉久久网| 18禁裸乳无遮挡动漫免费视频| 老司机亚洲免费影院| 亚洲三级黄色毛片| 男女下面插进去视频免费观看| 日韩av免费高清视频| 午夜福利视频精品| 国产精品国产av在线观看| 亚洲一区二区三区欧美精品| 91精品伊人久久大香线蕉| 不卡av一区二区三区| 久久这里有精品视频免费| 男女啪啪激烈高潮av片| videossex国产| videos熟女内射| 日韩一本色道免费dvd| 一级毛片 在线播放| 国产人伦9x9x在线观看 | 国产野战对白在线观看| 黄频高清免费视频| 91久久精品国产一区二区三区| 晚上一个人看的免费电影| 日韩 亚洲 欧美在线| 国产一区二区 视频在线| 亚洲一级一片aⅴ在线观看| 国产精品久久久av美女十八| 久久综合国产亚洲精品| 成年美女黄网站色视频大全免费| 天堂俺去俺来也www色官网| 久久久精品国产亚洲av高清涩受| 亚洲成人av在线免费| 国产日韩欧美亚洲二区| 午夜激情av网站| 在线观看www视频免费| 老司机影院成人| 卡戴珊不雅视频在线播放| 国产日韩一区二区三区精品不卡| 视频区图区小说| 免费高清在线观看视频在线观看| 国产精品 国内视频| 亚洲av中文av极速乱| 国产av码专区亚洲av| 国产白丝娇喘喷水9色精品| 亚洲,欧美,日韩| 国产探花极品一区二区| 丝袜美腿诱惑在线| 亚洲精品,欧美精品| 两个人看的免费小视频| 天堂俺去俺来也www色官网| 亚洲,欧美,日韩| 国产一区二区三区av在线| 青春草亚洲视频在线观看| 国产精品99久久99久久久不卡 | 国产视频首页在线观看| 9热在线视频观看99| 日本91视频免费播放| h视频一区二区三区| 午夜影院在线不卡| 一边摸一边做爽爽视频免费| 亚洲国产精品999| 香蕉国产在线看| xxxhd国产人妻xxx| 国产欧美日韩一区二区三区在线| 久久久久国产网址| 青春草视频在线免费观看| 欧美精品国产亚洲| 少妇猛男粗大的猛烈进出视频| 三上悠亚av全集在线观看| 99re6热这里在线精品视频| 美女主播在线视频| 老司机亚洲免费影院| videos熟女内射| 亚洲一码二码三码区别大吗| 黄片播放在线免费| 久久精品国产亚洲av天美| 尾随美女入室| 国产欧美日韩综合在线一区二区| 亚洲婷婷狠狠爱综合网| 久热这里只有精品99| 亚洲av国产av综合av卡| 久久国产亚洲av麻豆专区| 老女人水多毛片| 亚洲精品视频女| 亚洲情色 制服丝袜| 一区二区三区激情视频| 国产免费现黄频在线看| 在线观看三级黄色| 国产精品国产三级国产专区5o| 亚洲精品一二三| 午夜日本视频在线| 久久99热这里只频精品6学生| 999精品在线视频| 大陆偷拍与自拍| 亚洲精品国产色婷婷电影| 久久久a久久爽久久v久久| av免费观看日本| 亚洲精品第二区| 在线看a的网站| 国精品久久久久久国模美| 国产av一区二区精品久久| 精品一区二区三区四区五区乱码 | 一级黄片播放器| 丝袜喷水一区| 99re6热这里在线精品视频| 黄色配什么色好看| 免费观看在线日韩| 日韩中字成人| 国产精品无大码| 99香蕉大伊视频| 日韩不卡一区二区三区视频在线| 亚洲综合色网址| 人人妻人人澡人人看| 波多野结衣一区麻豆| 国产精品亚洲av一区麻豆 | 欧美亚洲 丝袜 人妻 在线| 亚洲男人天堂网一区| 亚洲在久久综合| 99国产综合亚洲精品| 成人免费观看视频高清| 两个人免费观看高清视频| 男女无遮挡免费网站观看| 成人午夜精彩视频在线观看| 国产亚洲精品第一综合不卡| kizo精华| 男的添女的下面高潮视频| av.在线天堂| 欧美日韩综合久久久久久| 你懂的网址亚洲精品在线观看| 精品酒店卫生间| 国产av一区二区精品久久| 午夜福利在线免费观看网站| freevideosex欧美| 国产成人精品婷婷| 少妇猛男粗大的猛烈进出视频| 精品少妇一区二区三区视频日本电影 | 一边摸一边做爽爽视频免费| 韩国高清视频一区二区三区| 国产伦理片在线播放av一区| 在线观看三级黄色| 丝瓜视频免费看黄片| 永久免费av网站大全| 一二三四中文在线观看免费高清| 午夜福利乱码中文字幕| 亚洲欧美成人综合另类久久久| av女优亚洲男人天堂| 九草在线视频观看| 免费在线观看黄色视频的| 又黄又粗又硬又大视频| av视频免费观看在线观看| 18在线观看网站| 亚洲综合精品二区| 狠狠精品人妻久久久久久综合| 国产精品麻豆人妻色哟哟久久| 亚洲一区二区三区欧美精品| 丰满少妇做爰视频| 一本一本久久a久久精品综合妖精 国产伦在线观看视频一区 | 午夜福利在线免费观看网站| 久久久精品94久久精品| 亚洲欧美色中文字幕在线| 大话2 男鬼变身卡| 岛国毛片在线播放| 99热网站在线观看| 亚洲av综合色区一区| 亚洲欧美精品自产自拍| av免费在线看不卡| 女性被躁到高潮视频| av在线老鸭窝| 亚洲欧洲国产日韩| 一级片'在线观看视频| 最新中文字幕久久久久| 九色亚洲精品在线播放| 夫妻性生交免费视频一级片| 热re99久久国产66热| 亚洲欧美成人精品一区二区| 国产一区二区 视频在线| 巨乳人妻的诱惑在线观看| 黄片无遮挡物在线观看| 成人影院久久| 国产人伦9x9x在线观看 | 涩涩av久久男人的天堂| 国产片特级美女逼逼视频| 热re99久久精品国产66热6| 亚洲少妇的诱惑av| 国产一区二区三区综合在线观看| 汤姆久久久久久久影院中文字幕| 国产亚洲午夜精品一区二区久久| 女性被躁到高潮视频| 赤兔流量卡办理| 亚洲人成电影观看| 欧美少妇被猛烈插入视频| 欧美精品亚洲一区二区| 亚洲国产看品久久| 亚洲av欧美aⅴ国产| 欧美少妇被猛烈插入视频| 国产日韩欧美视频二区| 国产精品不卡视频一区二区| 只有这里有精品99| 观看美女的网站| 久久久久久久国产电影| 80岁老熟妇乱子伦牲交| 久久这里只有精品19| 久久 成人 亚洲| 久久国内精品自在自线图片| 久热久热在线精品观看| 成年动漫av网址| 免费黄网站久久成人精品| 中文字幕另类日韩欧美亚洲嫩草| 少妇人妻 视频| 亚洲欧美清纯卡通| 国产不卡av网站在线观看| 精品福利永久在线观看| 久久影院123| 韩国av在线不卡| 久久久久久人妻| 欧美 日韩 精品 国产| 婷婷色av中文字幕| 中文字幕亚洲精品专区| 欧美日韩精品网址| 中文字幕人妻熟女乱码| 最近中文字幕2019免费版| 天天躁夜夜躁狠狠久久av| 18在线观看网站| 日本色播在线视频| 国产精品秋霞免费鲁丝片| 国产一区二区 视频在线| 国产成人免费观看mmmm| 色婷婷av一区二区三区视频| 免费av中文字幕在线| 国产极品粉嫩免费观看在线| 国产精品亚洲av一区麻豆 | 人体艺术视频欧美日本| 赤兔流量卡办理| 国产av精品麻豆| 视频在线观看一区二区三区| 亚洲熟女精品中文字幕| 一边亲一边摸免费视频| 国产老妇伦熟女老妇高清| 欧美在线黄色| 亚洲综合色惰| 国产成人欧美| 18在线观看网站| 老司机影院成人| 电影成人av| 中文字幕精品免费在线观看视频| 成年人免费黄色播放视频| 欧美国产精品一级二级三级| 精品亚洲乱码少妇综合久久| av免费观看日本| 999久久久国产精品视频| 视频在线观看一区二区三区| 亚洲精品日本国产第一区| 免费高清在线观看日韩| 自拍欧美九色日韩亚洲蝌蚪91| 一区二区三区激情视频| 如日韩欧美国产精品一区二区三区| 男人爽女人下面视频在线观看| 成人亚洲精品一区在线观看| 亚洲av电影在线观看一区二区三区| 久久精品国产鲁丝片午夜精品| 亚洲精品视频女| 国产精品一二三区在线看| 国产精品av久久久久免费| 青春草亚洲视频在线观看| 精品国产一区二区三区四区第35| 伦理电影免费视频| 青春草视频在线免费观看| 亚洲欧美成人综合另类久久久| 亚洲国产色片| 中文字幕另类日韩欧美亚洲嫩草| 最近的中文字幕免费完整| 国产精品av久久久久免费| 观看美女的网站| 亚洲三级黄色毛片| 中国国产av一级| 亚洲视频免费观看视频| 爱豆传媒免费全集在线观看| 成年av动漫网址| 成人国产av品久久久| 男女免费视频国产| 日日摸夜夜添夜夜爱| 欧美人与善性xxx| 这个男人来自地球电影免费观看 | 自拍欧美九色日韩亚洲蝌蚪91| 纯流量卡能插随身wifi吗| 国产一区二区在线观看av| 久久久久久人人人人人| 成人手机av| 狂野欧美激情性bbbbbb| 国产欧美亚洲国产| 欧美日韩视频高清一区二区三区二| 18禁国产床啪视频网站| 男女边吃奶边做爰视频| 亚洲av综合色区一区| 亚洲av男天堂| 老熟女久久久| 日韩制服骚丝袜av| 久久精品熟女亚洲av麻豆精品| 成年女人毛片免费观看观看9 | 久久精品国产亚洲av天美| 两性夫妻黄色片| 一级黄片播放器| 寂寞人妻少妇视频99o| 青春草国产在线视频| 18在线观看网站| 丝袜脚勾引网站| 99精国产麻豆久久婷婷| 国产免费一区二区三区四区乱码| 国产在线视频一区二区| 在线观看国产h片| 一级爰片在线观看| 久久人人爽av亚洲精品天堂| 久久久久精品人妻al黑| 欧美精品av麻豆av| 国产白丝娇喘喷水9色精品| 亚洲成人手机| 女性生殖器流出的白浆| 久久97久久精品| 午夜福利在线观看免费完整高清在| 精品国产国语对白av| 国产免费现黄频在线看| av卡一久久| 在线看a的网站| 免费日韩欧美在线观看| 最近中文字幕2019免费版| 最近中文字幕高清免费大全6| 国产一区二区激情短视频 | 国产日韩欧美视频二区| 国产女主播在线喷水免费视频网站| 在线观看www视频免费| 久久99精品国语久久久| 久久人人爽人人片av| 最新的欧美精品一区二区| 春色校园在线视频观看| 国产精品一区二区在线观看99| 高清不卡的av网站| 黄色配什么色好看| 久久热在线av| 少妇的逼水好多| 久久久久久久精品精品| 捣出白浆h1v1| 日日摸夜夜添夜夜爱| 免费大片黄手机在线观看| 最近手机中文字幕大全| 丝袜美腿诱惑在线| 性色avwww在线观看| 亚洲精品自拍成人| 青春草国产在线视频| 街头女战士在线观看网站| 精品少妇内射三级| 国产毛片在线视频| 精品第一国产精品| 99国产精品免费福利视频| 国产综合精华液| 久热这里只有精品99| 有码 亚洲区| 国产成人午夜福利电影在线观看| 视频区图区小说| 久久久欧美国产精品| 亚洲国产精品一区三区| 十八禁网站网址无遮挡| 在现免费观看毛片| 精品人妻偷拍中文字幕| 青春草国产在线视频| 大码成人一级视频| 欧美变态另类bdsm刘玥| 国产成人精品婷婷| 五月开心婷婷网| 9191精品国产免费久久| 大香蕉久久网| 最近2019中文字幕mv第一页| 街头女战士在线观看网站| 美女视频免费永久观看网站| 一级片'在线观看视频| 亚洲第一青青草原| 国产视频首页在线观看| 狠狠婷婷综合久久久久久88av| 曰老女人黄片| 一级片免费观看大全| 涩涩av久久男人的天堂| 大片电影免费在线观看免费| 欧美精品高潮呻吟av久久| www.熟女人妻精品国产| 熟女av电影| av国产久精品久网站免费入址| 亚洲av电影在线进入| 亚洲国产色片| 精品国产一区二区三区久久久樱花| 国产亚洲一区二区精品| 免费人妻精品一区二区三区视频| 美女视频免费永久观看网站| 18禁裸乳无遮挡动漫免费视频| 丁香六月天网| av网站在线播放免费| 日韩在线高清观看一区二区三区|