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研究高原醫(yī)學(xué)設(shè)備動(dòng)物實(shí)驗(yàn)高低壓氧艙

簡(jiǎn)要描述:研究高原醫(yī)學(xué)設(shè)備動(dòng)物實(shí)驗(yàn)高低壓氧艙是專門為實(shí)驗(yàn)動(dòng)物設(shè)計(jì)的一款實(shí)驗(yàn)氧艙,可同時(shí)用于低壓氧和高壓氧研究。具有手動(dòng)和自動(dòng)兩種操作方式,可用于模擬高原環(huán)境,制作腦水腫、肺動(dòng)脈高壓等動(dòng)物模型

  • 產(chǎn)品型號(hào):ProOx-850
  • 廠商性質(zhì):生產(chǎn)廠家
  • 更新時(shí)間:2026-01-21
  • 訪  問  量:3240

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研究高原醫(yī)學(xué)設(shè)備動(dòng)物實(shí)驗(yàn)高低壓氧艙產(chǎn)品描述:

是專門為實(shí)驗(yàn)動(dòng)物設(shè)計(jì)的一款實(shí)驗(yàn)氧艙,可同時(shí)用于低壓氧和高壓氧研究。具有手動(dòng)和自動(dòng)兩種操作方式,可用于模擬高原環(huán)境,制作腦水腫、肺動(dòng)脈高壓等動(dòng)物模型。

研究高原醫(yī)學(xué)設(shè)備動(dòng)物實(shí)驗(yàn)高低壓氧艙產(chǎn)品特點(diǎn):

1、采用10英寸觸摸屏,操作簡(jiǎn)單;

2、實(shí)時(shí)顯示壓力和氧氣濃度動(dòng)態(tài)變化曲線;

3、最高可模擬10000米海拔高度,最大壓力達(dá)0.15MPa;

4、具備自動(dòng)換氣功能,符合動(dòng)物飼養(yǎng)規(guī)范;

5、動(dòng)物艙體采用進(jìn)口亞克力加厚耗材,堅(jiān)固可靠;

6、具有抽拉式動(dòng)物載床,方便去放動(dòng)物與清潔;

7、具有氣體緩沖器,減小細(xì)股急流氣體對(duì)動(dòng)物的影響;

8、多級(jí)空氣過濾器確保氣體清潔,同時(shí)去除空氣供應(yīng)中的微粒物質(zhì)、水分、油和油蒸汽;

9、提供多方位的報(bào)警功能,提醒實(shí)驗(yàn)人員異常狀態(tài);

應(yīng)用領(lǐng)域:

高原醫(yī)學(xué)研究、肺水腫、腦水腫、肺動(dòng)脈高壓等疾病研究;

型號(hào)說明:

名稱型號(hào)說明
動(dòng)物高低壓氧艙ProOx-850可同時(shí)用于低壓氧和高壓氧研究

使用客戶名單:

研究高原醫(yī)學(xué)設(shè)備動(dòng)物實(shí)驗(yàn)高低壓氧艙

相關(guān)文獻(xiàn)

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[2] Wu L W, Chen M, Jiang C Y, et al. Inactivation of AXL in Cardiac Fibroblasts Alleviates Right Ventricular Remodeling in Pulmonary Hypertension[J]. Advanced Science (IF 14.1), 2025: e08995.

[3] Lei R, Gu M, Li J, et al. Lipoic acid/trometamol assembled hydrogel as injectable bandage for hypoxic wound healing at high altitude[J]. Chemical Engineering Journal (IF 13.4), 2024, 489: 151499.

[4] Li Z, Li H, Qiao W, et al. Multi-omics dissection of high TWAS-active endothelial pathogenesis in pulmonary arterial hypertension: bridging single-cell heterogeneity, machine learning-driven biomarkers, and developmental reprogramming[J]. International Journal of Surgery (IF 10.1), 10.1097.

[5] Pei Y, Huang L, Wang T, et al. Bone marrow mesenchymal stem cells loaded into hydrogel/nanofiber composite scaffolds ameliorate ischemic brain injury[J]. Materials Today Advances (IF 10), 2023, 17: 100349.

[6] Wang Q, Liu J, Li R, et al. Macrophage κ-opioid receptor inhibits hypoxic pulmonary hypertension progression and right heart dysfunction via an SCD1-dependent anti-inflammatory response[J]. Genes & Diseases (IF 9.4), 2025: 101604.

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[8] Wang Y, Shen P, Wu Z, et al. Plasma Proteomic Profiling Reveals ITGA2B as a key regulator of heart health in high-altitude settlers[J]. Genomics, Proteomics & Bioinformatics, 2025: qzaf030.

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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.

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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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[36] Guo Y, Qin J, Sun R, et al. Molecular hydrogen promotes retinal vascular regeneration and attenuates neovascularization and neuroglial dysfunction in oxygen-induced retinopathy mice[J]. Biological Research, 2024, 57.

[37] Liu L, Zhang J, Song S, et al. Paraventricular nucleus neurons: important regulators of respiratory movement in mice with chronic intermittent hypoxia[J]. Annals of Medicine, 2025, 57(1): 2588664.

[38] Ma Q, Ma J, Cui J, et al. Oxygen enrichment protects against intestinal damage and gut microbiota disturbance in rats exposed to acute high-altitude hypoxia[J]. Frontiers in Microbiology, 2023, 14.

[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.

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[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.

[49] Zhang D, Bian W, Gao Z. Impact of Obstructive Sleep Apnea on Endometrial Function in Female Rats: Mechanism Exploration[J]. Nature and Science of Sleep, 2025: 2485-2499.

[50] Zhang N, Wei F, Ning S, et al. PPARγ Agonist Rosiglitazone and Antagonist GW9662: Antihypertensive Effects on Chronic Intermittent Hypoxia-Induced Hypertension in Rats[J]. Journal of Cardiovascular Translational Research, 2024: 1-13.

[51] Zhang Y, Zhang A, Yang J, et al. Hypoxic Mesenchymal Stem Cell Exosome‐Derived SLC25A3 Ameliorates Bronchopulmonary Dysplasia by Modulating Macrophage Polarization and Oxidative Stress[J]. Cell Biochemistry and Function, 2025, 43(12): e70152.

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參考:

高原疾病介紹;

不同的海拔高度大氣壓和氧分壓的變化對(duì)比;

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