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        1. 產品(pin)展(zhan)示PRODUCTS

          您當(dang)前(qian)的位置:首(shou)頁 > 產品(pin)展(zhan)示 > 動物 > 動物呼(hu)吸代(dai)謝(xie)測(ce)量 > 斑馬魚(yu)高(gao)通(tong)量呼(hu)吸代(dai)謝(xie)測(ce)量系(xi)統(tong)
          斑馬魚(yu)高(gao)通(tong)量呼(hu)吸代(dai)謝(xie)測(ce)量系(xi)統(tong)
          更(geng)新時間(jian):2025-07-02
          訪(fang)問(wen)次(ci)數:1250
          熒光(guang)光(guang)纖(xian)氧(yang)氣(qi)測(ce)量技術具有(you)高(gao)精確(que)度(du)、高(gao)可(ke)靠(kao)性(xing)、響(xiang)應(ying)時間(jian)短(duan)、適用於氣(qi)相(xiang)和液相(xiang)等優(you)勢,因(yin)此隨(sui)著技術的問(wen)世,精(jing)確、高(gao)通(tong)量測(ce)量微小(xiao)生(sheng)物的呼(hu)吸和評估其(qi)能量代謝(xie)成為(wei)可(ke)能。高(gao)通(tong)量呼(hu)吸測(ce)量系(xi)統(tong)基於熒光(guang)光(guang)纖(xian)氧(yang)氣(qi)測(ce)量技術,能夠對斑馬魚(yu)的胚胎(tai)及幼(you)魚(yu)進行(xing)測(ce)量,測(ce)定(ding)其(qi)耗(hao)氧(yang)量,進而評(ping)估其(qi)代(dai)謝(xie)水(shui)平(ping)。系(xi)統(tong)在生(sheng)物醫(yi)學(xue)、實(shi)驗(yan)生(sheng)物學(xue)、汙(wu)染(ran)生(sheng)態學(xue)與(yu)環(huan)境(jing)毒理學(xue)、環(huan)境(jing)科學(xue)、氣(qi)候(hou)變(bian)化(hua)研(yan)究等領域(yu)具有(you)越來越(yue)重(zhong)要的應用價值(zhi)。
          品(pin)牌(pai)易(yi)科泰價格(ge)區間(jian)面(mian)議
          產地(di)類(lei)別(bie)國產應用領域(yu)醫療衛生(sheng),環保(bao),生(sheng)物產業(ye),農林(lin)牧漁(yu),綜(zong)合

          熒光(guang)光(guang)纖(xian)氧(yang)氣(qi)測(ce)量技術具有(you)高(gao)精確(que)度(du)、高(gao)可(ke)靠(kao)性(xing)響(xiang)應(ying)時間(jian)短(duan)、適用於氣(qi)相(xiang)和液相(xiang)等優(you)勢,因(yin)此隨(sui)著技術的問(wen)世,精(jing)確、高(gao)通(tong)量測(ce)量微小(xiao)生(sheng)物的呼(hu)吸和評估其(qi)能量代謝(xie)成為(wei)可(ke)能。高(gao)通(tong)量呼(hu)吸測(ce)量系(xi)統(tong)基於熒光(guang)光(guang)纖(xian)氧(yang)氣(qi)測(ce)量技術,能夠對斑(ban)馬魚(yu)的胚胎(tai)及幼(you)魚(yu)進行(xing)測(ce)量,測(ce)定(ding)其(qi)耗(hao)氧(yang)量,進而評(ping)估其(qi)代(dai)謝(xie)水(shui)平(ping)。系(xi)統(tong)在生(sheng)物醫(yi)學(xue)、實(shi)驗(yan)生(sheng)物學(xue)、汙(wu)染(ran)生(sheng)態學(xue)與(yu)環(huan)境(jing)毒理學(xue)、環(huan)境(jing)科學(xue)氣候變化(hua)研(yan)究等領域(yu)具有(you)越來越(yue)重(zhong)要的應(ying)用價值(zhi)

          斑(ban)馬魚(yu)高(gao)通(tong)量呼(hu)吸代(dai)謝(xie)測(ce)量系(xi)統(tong)

           系(xi)統(tong)由內(nei)置熒光(guang)光(guang)纖(xian)氧(yang)氣(qi)傳感器的微型(xing)呼(hu)吸室、氧(yang)氣(qi)測(ce)量主機及數據(ju)采集分析軟(ruan)件(jian)組成,可(ke)對96個(ge)通(tong)道的樣品(pin)進行(xing)同步測(ce)量。

           

          功能特點(dian)

          氧(yang)氣(qi)測(ce)量高(gao)精度(du)、高(gao)可(ke)靠(kao)性(xing)、低功耗、低交叉(cha)敏(min)感性(xing)、快速響(xiang)應(ying)時間(jian)

          輕松校準(zhun)

          非侵(qin)入性(xing)和非破壞性(xing)測(ce)量

          緊(jin)湊(cou)設計,適用於溫控(kong)培(pei)養箱和/或(huo)搖(yao)床(chuang)

           

          技(ji)術參數(shu)

          1. 檢(jian)測(ce)技(ji)術:光(guang)纖(xian)氧(yang)傳(chuan)感器技術

          2. 適用場景(jing):原(yuan)位檢(jian)測(ce),可(ke)在(zai)培養(yang)箱裏(li)或(huo)搖(yao)床(chuang)上(shang)使用,便於溫度(du)控(kong)制(zhi)

          3. 呼(hu)吸室:透(tou)明(ming)聚苯(ben)乙(yi)烯(xi)材(cai)質(zhi),支持(chi)預(yu)消(xiao)毒處(chu)理,可(ke)重(zhong)復使(shi)用

          4. 氧(yang)氣(qi)測(ce)量主機:單(dan)個重670 g162 x 102 x 32 mm

          5. 主機內(nei)置溫度(du)傳(chuan)感器:0-50°C,分辨(bian)率0.012°C,精度±0.5°C

          6. 主機內置壓強傳(chuan)感器:300-1100mbar,分辨(bian)率0.11mbar,精度(du)±6mbar

          7. 最(zui)大采樣頻(pin)率:單(dan)通(tong)道激活(huo)時可(ke)達10-20次(ci)每秒(miao)

          8. 氧(yang)氣(qi)測(ce)量精度:±0.1% O2@1% O2±0.05 mg/L@0.44 mg/L

          9. 氧(yang)氣(qi)測(ce)量分辨(bian)率:0.01% O2@1% O20.005 mg/L@0.44 mg/L

          10. 電源:5VDCUSB供(gong)電

          11. 響(xiang)應(ying)時間(jian)<30s

          12. 通(tong)道數:96

          13. 系(xi)統(tong)適配(pei)其(qi)他(ta)魚(yu)類的胚胎(tai)及幼(you)魚(yu)

          14. 可(ke)選配(pei)斑(ban)馬魚(yu)成魚(yu)的靜態及動態呼(hu)吸測(ce)量系(xi)統(tong)

          斑馬魚(yu)高(gao)通(tong)量呼(hu)吸代(dai)謝(xie)測(ce)量系(xi)統(tong)


          參考文(wen)獻(xian)

          1. Feng, W.-W., Chen, H.-C., Audira, G., Suryanto, M.E., Saputra, F., Kurnia, K.A., Vasquez, R.D., Casuga, F.P., Lai, Y.-H., Hsiao, C.-D., Hung, C.-H., 2024. Evaluation of Tacrolimus’ Adverse Effects on Zebrafish in Larval and Adult Stages by Using Multiple Physiological and Behavioral Endpoints. Biology (Basel) 13, 112.

          2. Glass, B.H., Jones, K.G., Ye, A.C., Dworetzky, A.G., Barott, K.L., 2023. Acute heat priming promotes short-term climate resilience of early life stages in a model sea anemone. PeerJ 11, e16574.

          3. Heuer, R.M., Wang, Y., Pasparakis, C., Zhang, W., Scholey, V., Margulies, D., Grosell, M., 2023. Effects of elevated CO2 on metabolic rate and nitrogenous waste handling in the early life stages of yellowfin tuna (Thunnus albacares). Comparative Biochemistry and Physiology Part A: Molecular & Integrative Physiology 280, 111398.

          4. Kämmer, N., Reimann, T., Ovcharova, V., Braunbeck, T., 2023. A novel automated method for the simultaneous detection of breathing frequency and amplitude in zebrafish (Danio rerio) embryos and larvae. Aquatic Toxicology 258, 106493.

          5. Louhi, P., Pettinau, L., Härkönen, L.S., Anttila, K., Huusko, A., 2023. Carryover effects of environmental stressors influence the life performance of brown trout. Ecosphere 14, e4361.

          6. Mandic, M., Pan, Y.K., Gilmour, K.M., Perry, S.F., 2020. Relationships between the peak hypoxic ventilatory response and critical O2 tension in larval and adult zebrafish ( Danio rerio ). Journal of Experimental Biology jeb.213942.

          7. Mathiron, A.G.E., Gallego, G., Silvestre, F., 2023. Early-life exposure to permethrin affects phenotypic traits in both larval and adult mangrove rivulus Kryptolebias marmoratus. Aquatic Toxicology 259, 106543.

          8. Moore, B., Jolly, J., Izumiyama, M., Kawai, E., Ryu, T., Ravasi, T., 2023. Clownfish larvae exhibit faster growth, higher metabolic rates and altered gene expression under future ocean warming. Science of The Total Environment 873, 162296.

          9. Park, K.-H., Ye, Z., Zhang, J., Hammad, S.M., Townsend, D.M., Rockey, D.C., Kim, S.-H., 2019. 3-ketodihydrosphingosine reductase mutation induces steatosis and hepatic injury in zebrafish. Sci Rep 9, 1138.

          10. Ricarte, M., Prats, E., Montemurro, N., Bedrossiantz, J., Bellot, M., Gómez-Canela, C., Raldúa, D., 2023. Environmental concentrations of tire rubber-derived 6PPD-quinone alter CNS function in zebrafish larvae. Science of The Total Environment 896, 165240.

          11. Saputra, F., Lai, Y.-H., Roldan, M.J.M., Alos, H.C., Aventurado, C.A., Vasquez, R.D., Hsiao, C.-D., 2023. The Effect of the Pyrethroid Pesticide Fenpropathrin on the Cardiac Performance of Zebrafish and the Potential Mechanism of Toxicity. Biology 12, 1214.

          12. Schuster, L., Cameron, H., White, C.R., Marshall, D.J., 2021. Metabolism drives demography in an experimental field test. Proceedings of the National Academy of Sciences 118, e2104942118.

          13. Scovil, A.M., Boloori, T., de Jourdan, B.P., Speers-Roesch, B., 2023. The effect of chemical dispersion and temperature on the metabolic and cardiac responses to physically dispersed crude oil exposure in larval American lobster (Homarus americanus). Marine Pollution Bulletin 191, 114976.

          14. Varshney, S., Gora, A.H., Kiron, V., Siriyappagouder, P., Dahle, D., Kögel, T., Ørnsrud, R., Olsvik, P.A., 2023. Polystyrene nanoplastics enhance the toxicological effects of DDE in zebrafish (Danio rerio) larvae. Science of The Total Environment 859, 160457.

          15. Varshney, S., Gora, A.H., Siriyappagouder, P., Kiron, V., Olsvik, P.A., 2022. Toxicological effects of 6PPD and 6PPD quinone in zebrafish larvae. Journal of Hazardous Materials 424, 127623.

          16. Varshney, S., Lundås, M., Siriyappagouder, P., Kristensen, T., Olsvik, P.A., 2024. Ecotoxicological assessment of Cu-rich acid mine drainage of Sulitjelma mine using zebrafish larvae as an animal model. Ecotoxicology and Environmental Safety 269, 115796.

          17. Wang, Y., Pasparakis, C., Grosell, M., 2021. Role of the cardiovascular system in ammonia excretion in early life stages of zebrafish ( Danio rerio ). American Journal of Physiology-Regulatory, Integrative and Comparative Physiology 321, R377–R384. 


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