lactic acid has been researched along with Active Hyperemia in 14 studies
Lactic Acid: A normal intermediate in the fermentation (oxidation, metabolism) of sugar. The concentrated form is used internally to prevent gastrointestinal fermentation. (From Stedman, 26th ed)
2-hydroxypropanoic acid : A 2-hydroxy monocarboxylic acid that is propanoic acid in which one of the alpha-hydrogens is replaced by a hydroxy group.
Excerpt | Relevance | Reference |
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" The aim of this study was to investigate the coronary vascular effects of dexmedetomidine (DM) during reactive hyperemia." | 7.69 | Coronary vascular effects of dexmedetomidine during reactive hyperemia in the anesthetized dog. ( de Lange, S; Prinzen, FW; Roekaerts, PM, 1996) |
"Glibenclamide, iberiotoxin, and apamin (blockers of ATP-sensitive, large-conductance, and small-conductance Ca(2+)-activated K+ channels, respectively) were infused into the diaphragmatic vasculature of anesthetized indomethacin-treated dogs to assess the contribution of K+ channels to active hyperemia." | 3.69 | Contribution of potassium channels to active hyperemia of the canine diaphragm. ( Chang, HY; Gatensby, AG; Hussain, SN; Vanelli, G, 1994) |
" The aim of this study was to investigate the coronary vascular effects of dexmedetomidine (DM) during reactive hyperemia." | 3.69 | Coronary vascular effects of dexmedetomidine during reactive hyperemia in the anesthetized dog. ( de Lange, S; Prinzen, FW; Roekaerts, PM, 1996) |
"We conclude that reactive hyperemia is not a primary mechanism for BFR exercise-induced mTORC1 signaling and MPS." | 2.77 | Reactive hyperemia is not responsible for stimulating muscle protein synthesis following blood flow restriction exercise. ( Dickinson, JM; Drummond, MJ; Fry, CS; Gundermann, DM; Rasmussen, BB; Timmerman, KL; Volpi, E; Walker, DK, 2012) |
"Global cerebral ischemia and increased anaerobic metabolism were considered according to AVDO2 and AVDL respectively." | 1.30 | Cerebral hemodynamic changes during sustained hypocapnia in severe head injury: can hyperventilation cause cerebral ischemia? ( Ausina, A; Báguena, M; Ferrer, A; Garnacho, A; Manrique, S; Nadal, M; Sahuquillo, J, 1998) |
"Adenosine has been postulated to mediate the increase in coronary blood flow when myocardial oxygen consumption is increased." | 1.30 | Role of adenosine in local metabolic coronary vasodilation. ( Feigl, EO; Kroll, K; Richmond, KN; Van Bibber, R; Yada, T, 1999) |
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 1 (7.14) | 18.7374 |
1990's | 8 (57.14) | 18.2507 |
2000's | 4 (28.57) | 29.6817 |
2010's | 1 (7.14) | 24.3611 |
2020's | 0 (0.00) | 2.80 |
Authors | Studies |
---|---|
Hashemi, P | 1 |
Bhatia, R | 1 |
Nakamura, H | 1 |
Dreier, JP | 1 |
Graf, R | 1 |
Strong, AJ | 1 |
Boutelle, MG | 1 |
Gundermann, DM | 1 |
Fry, CS | 1 |
Dickinson, JM | 1 |
Walker, DK | 1 |
Timmerman, KL | 1 |
Drummond, MJ | 1 |
Volpi, E | 1 |
Rasmussen, BB | 1 |
Jones, AM | 1 |
Berger, NJ | 1 |
Wilkerson, DP | 1 |
Roberts, CL | 1 |
Rosengarten, B | 1 |
Hecht, M | 1 |
Auch, D | 1 |
Ghofrani, HA | 1 |
Schermuly, RT | 1 |
Grimminger, F | 1 |
Kaps, M | 1 |
Vanelli, G | 1 |
Chang, HY | 1 |
Gatensby, AG | 1 |
Hussain, SN | 1 |
McAinsh, AM | 1 |
Turner, MA | 1 |
O'Hare, D | 1 |
Nithythyananthan, R | 1 |
Johnston, DG | 1 |
O'Gorman, DJ | 1 |
Sheridan, DJ | 1 |
Iversen, PO | 1 |
Roekaerts, PM | 1 |
Prinzen, FW | 1 |
de Lange, S | 1 |
Schleien, CL | 1 |
Kuluz, JW | 1 |
Gelman, B | 1 |
Ausina, A | 1 |
Báguena, M | 1 |
Nadal, M | 1 |
Manrique, S | 1 |
Ferrer, A | 1 |
Sahuquillo, J | 1 |
Garnacho, A | 1 |
Yada, T | 1 |
Richmond, KN | 1 |
Van Bibber, R | 1 |
Kroll, K | 1 |
Feigl, EO | 1 |
Jonas, J | 1 |
Heimann, A | 1 |
Strecker, U | 1 |
Kempski, O | 1 |
Sinoway, LI | 1 |
Wroblewski, KJ | 1 |
Prophet, SA | 1 |
Ettinger, SM | 1 |
Gray, KS | 1 |
Whisler, SK | 1 |
Miller, G | 1 |
Moore, RL | 1 |
Kitakaze, M | 1 |
Hori, M | 1 |
Tamai, J | 1 |
Iwakura, K | 1 |
Koretsune, Y | 1 |
Kagiya, T | 1 |
Iwai, K | 1 |
Kitabatake, A | 1 |
Inoue, M | 1 |
Kamada, T | 1 |
Trial | Phase | Enrollment | Study Type | Start Date | Status | ||
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Nutritional and Contractile Regulation of Muscle Growth (Cycle 2)[NCT00891696] | Phase 1 | 144 participants (Actual) | Interventional | 2009-04-30 | Completed | ||
[information is prepared from clinicaltrials.gov, extracted Sep-2024] |
1 trial available for lactic acid and Active Hyperemia
Article | Year |
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Reactive hyperemia is not responsible for stimulating muscle protein synthesis following blood flow restriction exercise.
Topics: Adult; Analysis of Variance; Biomarkers; Blood Glucose; Blood Pressure; Cross-Over Studies; Femoral | 2012 |
13 other studies available for lactic acid and Active Hyperemia
Article | Year |
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Persisting depletion of brain glucose following cortical spreading depression, despite apparent hyperaemia: evidence for risk of an adverse effect of Leão's spreading depression.
Topics: Animals; Brain; Cats; Cortical Spreading Depression; Glucose; Hyperemia; Lactic Acid; Male; Microdia | 2009 |
Effects of "priming" exercise on pulmonary O2 uptake and muscle deoxygenation kinetics during heavy-intensity cycle exercise in the supine and upright positions.
Topics: Adaptation, Physiological; Adult; Energy Metabolism; Exercise; Exercise Test; Humans; Hyperemia; Lac | 2006 |
Microcirculatory dysfunction in the brain precedes changes in evoked potentials in endotoxin-induced sepsis syndrome in rats.
Topics: Animals; Blood Flow Velocity; Blood Glucose; Blood Pressure; Brain; Cerebrovascular Circulation; Dis | 2007 |
Contribution of potassium channels to active hyperemia of the canine diaphragm.
Topics: 1-Methyl-3-isobutylxanthine; Animals; Apamin; Blood Gas Analysis; Diaphragm; Dogs; Electric Stimulat | 1994 |
Cardiac hypertrophy impairs recovery from ischaemia because there is a reduced reactive hyperaemic response.
Topics: Animals; Cardiomegaly; Coronary Circulation; Guinea Pigs; Hyperemia; Lactates; Lactic Acid; Male; My | 1995 |
Local blood flow is not linked to lactate within single rabbit skeletal muscles.
Topics: Animals; Female; Hindlimb; Hyperemia; L-Lactate Dehydrogenase; Lactates; Lactic Acid; Male; Microsph | 1993 |
Coronary vascular effects of dexmedetomidine during reactive hyperemia in the anesthetized dog.
Topics: Adrenergic alpha-Agonists; Anesthesia; Animals; Coronary Circulation; Dogs; Female; Hyperemia; Imida | 1996 |
Hemodynamic effects of nitric oxide synthase inhibition before and after cardiac arrest in infant piglets.
Topics: Animals; Animals, Newborn; Brain; Cardiopulmonary Resuscitation; Cerebrovascular Circulation; Corona | 1998 |
Cerebral hemodynamic changes during sustained hypocapnia in severe head injury: can hyperventilation cause cerebral ischemia?
Topics: Adolescent; Adult; Brain; Brain Injuries; Brain Ischemia; Carbon Dioxide; Female; Hemodynamics; Home | 1998 |
Role of adenosine in local metabolic coronary vasodilation.
Topics: Adenosine; Animals; Coronary Circulation; Coronary Vessels; Dogs; Electrocardiography; Heart Rate; H | 1999 |
Hypertonic/hyperoncotic resuscitation after intestinal superior mesenteric artery occlusion: early effects on circulation and intestinal reperfusion.
Topics: Animals; Arterial Occlusive Diseases; Blood Pressure; Cardiac Output; Constriction; Fluid Therapy; H | 2000 |
Glycogen depletion-induced lactate reductions attenuate reflex responses in exercising humans.
Topics: Adult; Biopsy; Blood Pressure; Forearm; Glycogen; Heart Rate; Humans; Hyperemia; Lactates; Lactic Ac | 1992 |
Alpha 1-adrenoceptor activity regulates release of adenosine from the ischemic myocardium in dogs.
Topics: Adenosine; Adrenergic alpha-Antagonists; Animals; Coronary Circulation; Dogs; Hyperemia; Ischemia; L | 1987 |