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化工儀器網(wǎng)>產(chǎn)品展廳>生命科學儀器>動物實驗儀器>其它動物實驗儀器>ProOx-100 動物間歇低氧實驗系統(tǒng)

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ProOx-100 動物間歇低氧實驗系統(tǒng)

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  • 公司名稱 上海塔望智能科技有限公司
  • 品牌 其他品牌
  • 型號 ProOx-100
  • 產(chǎn)地
  • 廠商性質(zhì) 生產(chǎn)廠家
  • 更新時間 2026/1/20 17:23:42
  • 訪問次數(shù) 2943
產(chǎn)品標簽

低氧動物箱高氧動物箱

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聯(lián)系我們時請說明是化工儀器網(wǎng)上看到的信息,謝謝!


 

      響應“中國制造2025”的戰(zhàn)略號召,2018 年成立于上海交科科創(chuàng)園內(nèi),是一家生物醫(yī)藥實驗設備開發(fā)銷售的高新技術企業(yè)。我司致力于在該領域打破國外產(chǎn)品壟斷,樹立起值得驕傲的中國制造品牌。


      公司目前的產(chǎn)品線包括:能量代謝監(jiān)測系統(tǒng)、吸入式暴露染毒系統(tǒng)、動物無創(chuàng)呼吸檢測系統(tǒng)、低壓/高氧控制、激光散斑血流成像系統(tǒng)、脊髓/腦損傷儀等,所有產(chǎn)品均為自主研發(fā),同時塔望科技融合生命科學、醫(yī)學、IT、 電子、機械等領域先進技術,為客戶提供量身定制方案,滿足個性化的需求。

      我們在生命科學、醫(yī)藥研發(fā)等領域也在迅速追趕、逐漸超越歐美國家。目前落后于西方的生命科學儀器設備研發(fā)制造業(yè)也必然在中國創(chuàng)新創(chuàng)造的大背景下,迎來新的超越。這是時代給我們的機會。匠心筑夢,誠信筑塔,嚴謹求實,展望將來。塔望科技堅守工匠精神,用心做好每一件產(chǎn)品。我們將在這個瞬息萬變的黃金時代,為本領域科學家提供值得驕傲和信賴的產(chǎn)品。











低壓低氧實驗系統(tǒng),能量代謝監(jiān)測系統(tǒng),動物無創(chuàng)肺功能監(jiān)測,吸入式染毒造模系統(tǒng),激光散斑血流成像系統(tǒng)產(chǎn)品

產(chǎn)地類別 國產(chǎn) 應用領域 醫(yī)療衛(wèi)生,生物產(chǎn)業(yè),制藥/生物制藥

產(chǎn)品描述

塔望科技提供全系列的動物實驗用低/高氧控制產(chǎn)品,包括恒定濃度控制的低氧動物箱、高氧動物箱、可編程的間歇氧濃度控制系統(tǒng)、帶緩沖艙的手套低氧箱等。整套間歇氧氧實驗箱裝置主要由氧氣控制器和動物實驗箱兩部分組成。另可提供多種不同的氣體控制器,滿足不同實驗O2、CO2、NO、CO、O3等氣體濃度控制的需求。

ProOx-100動物間歇低氧實驗系統(tǒng)可以控制動物實驗箱內(nèi)持續(xù)低氧的環(huán)境,用以制造相關的間歇低氧實驗模型。用戶可自由設置所需要的濃度和實驗持續(xù)時間,所有的設置通過控制主機觸摸屏完成,人性化設計,操作簡便。

ProOx-100動物間歇低氧實驗系統(tǒng)監(jiān)測指標全面,動物低氧艙內(nèi)具有集成化的傳感器模塊,內(nèi)置溫度、濕度、氧氣、二氧化碳傳感器。可以實時監(jiān)測動物低氧艙內(nèi)的環(huán)境。系統(tǒng)通過閉環(huán)反饋控制,根據(jù)動物低氧艙內(nèi)的氧濃度實時反饋控制,使動物實驗數(shù)據(jù)更準確。Ox-100動物低氧實驗系統(tǒng)具有優(yōu)良的控制性能,持續(xù)低氧實驗時,氧濃度的誤差為0.1%。

如需高氧實驗,請選擇型號Ox-100HE。


產(chǎn)品特點及參數(shù)

1. 為動物間歇低氧實驗模型的建立提供穩(wěn)定的低氧環(huán)境

2. 按照設定氣體濃度自動配比氣體,無需在箱體外混合比例氣體,實驗氧濃度的準確,節(jié)省氣源

3. 艙體采用全透明PMMA材質(zhì),防止由于光線影響動物生物節(jié)律

4. 7英寸大屏觸摸屏控制,人性化界面,操作簡單

5. 監(jiān)測參數(shù):溫度、濕度、氧氣O2濃度、二氧化碳濃度

6. 控制精度:±0.1%

7. 非色散紅外(NDIR)二氧化碳傳感器,測量范圍:05000ppm

8. 進口電化學氧氣O2濃度檢測器,測量范圍:0-25%vol,線性度好,檢測準確、使用壽命長。具有溫度補償機制

9. 溫度檢測:進口高精度溫度傳感器

10. 氧氣濃度變化動態(tài)曲線,直觀了解氧氣濃度變化的過程

11. 具有定時功能,實驗完成,自動恢復常氧狀態(tài),并伴有聲音提示

12. 氧氣濃度自動校準:通過控制器對傳感器快速校準

13. *的氣體混合及循環(huán)機制,保證箱體內(nèi)氣體濃度的均一

14. 高性能電磁閥,性能穩(wěn)定,超長壽命

15. 艙體尺寸有多種選擇,可靈活搭配。也可根據(jù)實驗要求進行定制



ProOx-100動物間歇低氧實驗系統(tǒng)多功能控制


可進行間歇低氧實驗(CIH)、急性缺氧實驗、慢性缺氧實驗、高氧/低氧交替實驗



動物間歇低氧實驗系統(tǒng)












應用領域

肺動脈高壓、腎臟疾病研究、腫瘤研究、心血管疾病研究、視網(wǎng)膜病變、運動醫(yī)學研究、OSAHS、腦發(fā)育與神經(jīng)生物學、干細胞研究、醫(yī)學研究等


型號說明


名稱

型號

說明

單位

動物低氧實驗系統(tǒng)

Ox-100

恒定氧控制,低氧

動物氧濃度實驗系統(tǒng)

Ox-100HE

恒定氧控制,低氧/高氧

動物間歇低氧實驗系統(tǒng)

ProOx-100

恒定氧控制/間歇氧控制,低氧

動物間歇氧濃度實驗系統(tǒng)

ProOx-100HE

恒定氧控制/間歇氧控制,低氧/高氧

動物間歇低氧實驗系統(tǒng)ProOx-100-CIH

專用于睡眠呼吸暫停造模


艙體型號(可選擇不同尺寸的低氧艙)

名稱

型號

說明

單位

動物實驗艙體小號

OxC-S

大鼠籠x1

動物實驗艙體中號

OxC-M

大鼠籠x2

動物實驗艙體大號

OxC-L

大鼠籠x4

動物實驗艙體特大號

OxC-XL

大鼠籠x8

動物實驗艙體-CIH

OxC-CIH

36只小鼠

手套操作箱

Gl-700

700L



引用文獻


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[22] Shang W, Huang Y, Xu Z, et al. The impact of a high-carbohydrate diet on the cognitive behavior of mice in a low-pressure, low-oxygen environment[J]. Food & Function, 2025, 16(3): 1116-1129.

[23] Pei C, Jia N, Wang Y, et al. Notoginsenoside R1 protects against hypobaric hypoxia-induced high-altitude pulmonary edema by inhibiting apoptosis via ERK1/2-P90rsk-BAD ignaling pathway[J]. European Journal of Pharmacology, 2023, 959: 176065.

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[26] Gu N, Shen Y, He Y, et al. Loss of m6A demethylase ALKBH5 alleviates hypoxia-induced pulmonary arterial hypertension via inhibiting Cyp1a1 mRNA decay[J]. Journal of Molecular and Cellular Cardiology, 2024.

[27] Luan X, Zhu D, Hao Y, et al. Qibai Pingfei Capsule ameliorated inflammation in chronic obstructive pulmonary disease (COPD) via HIF-1 α/glycolysis pathway mediated of BMAL1[J]. International Immunopharmacology, 2025, 144: 113636.

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[30] Liu C, Qu D, Li C, et al. miR‐448‐3p/miR‐1264‐3p Participates in Intermittent Hypoxic Response in Hippocampus by Regulating Fam76b/hnRNPA2B1[J]. CNS Neuroscience & Therapeutics, 2025, 31(2): e70239.

[31] Wu L W, Chen M, Jiang D J, et al. TCF7 enhances pulmonary hypertension by boosting stressed natural killer cells and their interaction with pulmonary arterial smooth muscle cells[J]. Respiratory Research, 2025, 26(1): 202.

[32] Xie L, Wu Q, Huang H, et al. Neuroregulation of histamine of circadian rhythm disorder induced by chronic intermittent hypoxia[J]. European Journal of Pharmacology, 2025: 177662.

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[34] Wang X, Xie Y, Niu Y, et al. CX3CL1/CX3CR1 signal mediates M1-type microglia and accelerates high-altitude-induced forgetting[J]. Frontiers in Cellular Neuroscience, 2023, 17: 1189348.

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[39] Lan J, Lin J, Guo Y, et al. Sequencing and bioinformatics analysis of exosome-derived miRNAs in mouse models of pancreatic injury induced by OSA[J]. Frontiers in Physiology, 2025, 16: 1712442.

[40] Feng X, Li C, Zhang W, et al. Mechanism of retinal angiogenesis induced by HIF-1α and HIF-2α under hyperoxic conditions[J]. Scientific Reports, 2025, 15(1): 36049.

[41] Yao Y, Chen Y, Li Y, et al. TGM2 Enhances Hypobaric Hypoxia-mediated Brain Injury Via Regulating NLRP3/GSDMD Signaling[J]. Neurochemical Research, 2025, 50(6): 1-11.

[42] Yang A, Guo L, Zhang Y, et al. MFN2-mediated mitochondrial fusion facilitates acute hypobaric hypoxia-induced cardiac dysfunction by increasing glucose catabolism and ROS production[J]. Biochimica et Biophysica Acta (BBA)-General Subjects, 2023: 130413.

[43] Chu H, Jiang W, Zuo N, et al. Astrocyte activation: A key mediator underlying chronic intermittent hypoxia-induced cognitive dysfunction[J]. Sleep Medicine, 2025: 106692.

[44] Xu A, Huang F, Chen E, et al. Hyperbaric oxygen therapy attenuates heatstroke-induced hippocampal injury by inhibiting microglial pyroptosis[J]. International Journal of Hyperthermia, 2024, 41(1): 2382162.

[45] Zhang Z, Zheng X, He Y, et al. Hyperbaric oxygen ameliorates neuroinflammation in heat-stressed BV-2 microglial cells: potential involvement of EAAT2 regulation[J]. International Journal of Hyperthermia, 2025, 42(1): 2583133.

[46] Jinyu F, Huaicun L, Yanfei Z, et al. Nogo-A Protein Mediates Oxidative Stress and Synaptic Damage Induced by High-altitude Hypoxia in the Rat Hippocampus[J]. 2024.

[47] Su L, Ni T, Fan R, et al. An attention to the effect of intravitreal injection on the controls of oxygen-induced retinopathy mouse model[J]. Experimental Eye Research, 2024, 248: 110094.

[48] Xu Y, Xu J, Li J, et al. Interplay of HIF-1α, SMAD2, and VEGF signaling in hypoxic renal environments: impact on macrophage polarization and renoprotection[J]. Renal Failure, 2025, 47(1): 2561784.

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[52] Lan J, Wang Y, Liu C, et al. Genome-wide analysis of m6A-modified circRNAs in the mouse model of myocardial injury induced by obstructive sleep apnea[J]. BMC Pulmonary Medicine, 2025, 25(1): 158.

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