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At least 19 recordsLinked to original sources

Adaptations to breath-hold diving: from traditional divers to elite athletes.

Breath-hold diving exposes humans to repeated episodes of profound hypoxia and hypercapnia, eliciting physiological adaptations that enable prolonged underwater performance. This article summarises current knowledge on chronic adaptations in elite breath-hold athletes and traditional diving populations, including the Bajau sea nomads of Southeast Asia and the Korean Haenyeo divers. Evidence indicates that repeated apnoea induces adaptations across multiple physiological systems. Haematological changes include increased spleen size and enhanced splenic contraction, augmenting circulating haemoglobin and oxygen stores during apnoea. In elite divers, structured training can increase resting spleen volume, whereas the Bajau exhibit genetically associated splenic enlargement linked to variants near the PDE10A gene. Cardiopulmonary adaptations include modified pulmonary vascular responses to hypoxia, improved oxygen conservation, and metabolic shifts favoring efficient mitochondrial energy production. Molecular adaptations involve enhanced antioxidant defenses and activation of hypoxia-responsive pathways that may mitigate oxidative stress associated with repeated hypoxia-reoxygenation cycles. Emerging evidence also suggests neural plasticity and possible structural brain adaptations, although the long-term neurological consequences of chronic intermittent hypoxia exposure remain uncertain. Studies of traditional diving populations indicate that both phenotypic plasticity and genetic selection contribute to diving capacity, highlighting interactions between training and evolution. Despite these benefits, breath-hold diving also carries risks, including hypoxic blackout, decompression sickness, and potential neurological injury. Understanding the mechanisms underlying human tolerance to extreme hypoxia may have implications beyond diving physiology, including applications in cardiovascular medicine, hypoxic diseases, and rehabilitation. Further longitudinal, genomic, and mechanistic studies are needed to clarify the limits, benefits, and clinical relevance of these adaptations.

Humans

Impact of neoprene wetsuits on lung volumes and work of breathing: implications for military diver safety and performance.

INTRODUCTION: Neoprene wetsuits may impose mechanical constraints on the chest wall, potentially altering respiratory function. This study investigated the impact of neoprene wetsuits on lung volumes, airway mechanics, and work of breathing (WOB) in healthy male divers. METHODS: A randomised crossover trial was conducted with 31 male divers at the Royal Netherlands Navy Diving Medical Centre. Participants underwent pulmonary function testing, including spirometry, body plethysmography, the forced oscillation technique (FOT), and diffusion capacity measurements, both with and without a hoodless standardised 5 mm neoprene full body wetsuit with a neoprene neck seal. Primary outcomes included changes in forced vital capacity (FVC), functional residual capacity (FRC), airway resistance (Raw), reactance (Xrs), and WOB. RESULTS: Wearing a neoprene wetsuit led to statistically significant reductions in FVC (2.8%, P < 0.05), forced expiration in one second (2.9%, P < 0.05), FRC (4.0%, P < 0.05), and expiratory reserve volume (10.9%, P < 0.05), alongside increases in inspiratory capacity and tidal volume. Raw increased significantly (P < 0.05), while the FOT revealed altered airway mechanics, evidenced by increased Xrs at multiple frequencies (P < 0.05). Diffusion capacity remained unchanged, suggesting preserved alveolar-capillary function. CONCLUSIONS: Neoprene wetsuits induce mechanically restrictive effects on the chest wall, reducing static and dynamic lung volumes and increasing WOB. While these changes may not be clinically relevant at rest, their impact needs to be determined during strenuous or prolonged dives, particularly when combined with other equipment that limits thorax excursions. Future research should explore the effects of the military 5 mm wetsuit under immersed conditions to better understand their operational impact on diver performance and safety.

Male

Differential gene transcription following intravenous injection of air bubbles in rats with varying resistance to decompression sickness.

Decompression sickness (DCS) is a pathology caused by the appearance of gas emboli in the bloodstream and tissues. However, the weak correlation between the amount of venous gas emboli (VGE) and the development of DCS, as well as the considerable interindividual variability in DCS susceptibility, suggests that a higher DCS resistance could be associated with a better management of VGE-induced stress. To study the effects of VGE independently of the hyperbaric stress induced by diving, Wistar and DCS-resistant male and female rats received 5 mL/kg of a 0.9% NaCl solution containing air microbubbles through the tail vein. After 120 min, the liver and lungs were harvested. Wet-to-dry weight ratio was determined in the lungs. Gene expression was quantified by reverse transcription-polymerase chain reaction in the liver. Compared with standard Wistar, DCS-resistant rats exhibited a lower lung wet-to-dry weight ratio after air microbubble injection, suggesting lower pulmonary fluid accumulation. In the liver, DCS-resistant rats showed higher tissue factor transcription at the basal state and post-air microbubble injection. Tissue factor pathway inhibitor was lower in DCS-resistant rats at the basal state but higher following air microbubble injection. Levels of heat shock protein 70 (HSP70), heat shock protein 27 (HSP27), and early growth response 1 (Egr-1) were higher in DCS-resistant rats after air microbubble injection. At the basal state, only HSP27 was higher in DCS-resistant rats, with HSP70 lower and Egr-1 not different. These results help clarify the pathways involved in the response to VGE and highlight potential mechanisms underlying resistance to DCS, including enhanced anticoagulant pathways and improved cellular stress responses.NEW & NOTEWORTHY This study suggests for the first time that DCS resistance may be associated with a better tolerance to VGE. This greater DCS resistance could be achieved through improved control of the procoagulant effects of bubbles via TFPI-dependent inhibitory mechanisms and an enhanced cellular stress response to VGE by HSP70, HSP27, and EGR-1. It also suggests that it may be possible to stratify the individual DCS risk based on the thromboinflammatory response to bubbles.

Animals

The effect of drysuit diving in warm water on body temperature and post immersion orthostatic hypotension.

INTRODUCTION: Warm-water diving can limit heat dissipation, particularly when performed in fully encapsulating protective gear, leading to substantial thermal and cardiovascular strain that may impair diver safety. Following immersion, removal of hydrostatic support combined with heat-induced vasodilation may reduce central blood volume and increase susceptibility to orthostatic intolerance during egress and recovery. The extent to which this thermal strain impairs post-immersion orthostatic tolerance remains unknown. METHODS: Four randomised, crossover immersion trials were conducted at 28&#xb0;C, 33&#xb0;C, 38&#xb0;C without precooling (38&#xb0;C), and 38&#xb0;C with precooling (38&#xb0;C + Cool), with subjects wearing fully encapsulating dive gear. Subjects walked for up to 60 minutes at approximately 50% of O2max heart rate (HR) or until core temperature (Tc) reached 38.5&#xb0;C, or they voluntarily stopped. Tc, HR, and perceptual measures were recorded every 10 minutes. Orthostatic tolerance was assessed after immersion via a 70&#xb0; head-up tilt test. RESULTS: Eight healthy adults completed all aspects of the study. Tc and HR were higher during both 38&#xb0;C conditions compared with 28&#xb0;C and 33&#xb0;C (all P < 0.01) with no differences between 38&#xb0;C and 38&#xb0;C + Cool. Sweat loss exceeded 1.2 (SD 0.67) L&#x22c5;h-1 in both 38&#xb0;C conditions compared with &#x2264; 0.3 (0.32) L&#x22c5;h-1 at 28&#xb0;C and 33&#xb0;C (P < 0.01). Survival analysis showed orthostatic tolerance decreased with increasing thermal stress (log-rank P = 0.027; trend P = 0.003). Precooling did not reduce peak Tc or HR, nor did it improve tolerance time in 38&#xb0;C water. CONCLUSIONS: Encapsulated warm-water diving causes heat stress and cardiovascular strain that persists after immersion, impairing orthostatic tolerance. Precooling does not significantly reduce these outcomes.

Humans

Ultrasound protocols used to detect vascular gas emboli in divers: a systematic review.

INTRODUCTION: Venous gas emboli (VGE) detected via ultrasound can be used as a surrogate marker for decompression stress. While Doppler ultrasound is the historical gold standard, two-dimensional (2D) ultrasonography offers advantages for on-site monitoring, including a wider field of view and reduced dependence on noise-free environments. This systematic review evaluates 2D ultrasonography protocols used in decompression research since the 2015 International Meeting on Ultrasound for Diving Research, identifying methodological similarities, differences, and adherence to consensus recommendations. METHODS: A search of PubMed and Scopus identified studies using 2D ultrasound to detect VGE in divers. Inclusion criteria were: (1) use of 2D ultrasound, (2) detection of VGE or monitoring of decompression stress, (3) inclusion of a diver cohort, and (4) publication after 2015. Data extraction focused on VGE scoring systems, ultrasound hardware, measurement protocols, and operator experience. Risk of bias was assessed using ROBINS-I-V2, and compliance with the 2015 consensus recommendations was evaluated. RESULTS: Twenty studies were included. The Eftedal-Brubakk scale was most commonly used (n = 15), with cardiac ultrasound as the primary imaging modality; one study assessed a peripheral vessel. Common shortcomings included post-dive measurements lasting less than two hours, underreporting of operator experience and hardware specifications, limited individual-level data, and inappropriate use of parametric statistics for ordinal bubble grade data. No study fully complied with all consensus recommendations. CONCLUSIONS: This review demonstrates that, although two-dimensional ultrasound is widely used for post-dive VGE assessment, methodological heterogeneity with multiple shortcomings remain. Furthermore, nearly all studies restricted imaging to the heart, thus leaving peripheral vessel assessment largely unexplored.

Embolism, Air

Scuba diving accidents.

The principal scuba diving medical problems of barotrauma, air embolism and decompression sickness have as their pathophysiologic basis the Ideal Gas Law and Boyle's Law. Hyperbaric chamber recompression therapy is the only definitive treatment of air embolism and decompression sickness. However, with a basic knowledge of diving medicine, the family physician can provide effective supportive care to the patient prior to initiation of hyperbaric therapy.

Accidents

Altitude decompression sickness: hyperbaric therapy results in 145 cases.

Most cases of decompression sickness that occur at altitude resolve upon descent to lower altitudes. Before the use of hyperbaric therapy, cases that did not resolve accounted for some of the most difficult medical management problems in military aerospace medicine. On 27 March, 1941, the U.S. Navy Diving School successfully used hyperbaric therapy for a case of altitude-induced decompression sickness that did not resolve on return to ground level. Since then, over 145 such cases have been treated by hyperbaric therapy. At first, treatments involved using compressed air, with varying success. Current medical management of altitude-induced decompression sickness requires immediate compression to 2.8 ATA, equivalent to 60 ft of sea water (FSW) pressure, and a series of intermittent oxygen and air breathing periods during the subsequent slow decompression to surface. This report confirms the treatment recommendations set forth by Behnke and Downey, and crystallized by Goodman in 1964. Conclusions are based on treatment experience in the management of 120 cases in U.S. Air Force hyperbaric chambers, and a survey of hyperbaric facilities which have treated 25 other cases.

Adult

Effect of long-term hyperbaric stress on ammonia metabolism in humans.

A significant increase in blood urea was found in 11 U.S. Navy divers during 8 d of air saturation hyperbaric exposure. Similar increases in blood urea have been found in animals that convulsed during hyperbaric oxygen exposure. Therefore, it is suggested that careful attention be given to blood ammonia and urea levels in humans during long-term hyperbaric exposure.

Adult

[Helium-oxygen mixture and the body (the hyperbaric aspect)].

A review of publications discussing the effect of hyperbaric He-O2 atmosphere demonstrates that its effect on the human body depends primarily on its physical parameters, density and heat conductance. Another specific effect of the atmosphere--its narcotic effect at increased pressures used in diving--still remains poorly documented. However, it appears a well recognized fact that the specific effect can be seen only in the transition period, i. e. during compression.

Animals

Case report: intracardial gas bubbles in relation to altitude decompression chokes.

A case of altitude decompression chokes in a subject is described, which occurred unintentionally in an experimental series dealing with safe time intervals between diving and flying at 9,000 m of altitude. Before the development of the first signs of chokes, intracardial gas bubbles could be registered during 65 min and heavy showers of bubbles during 38 min with the precordial Doppler ultrasound technique. The intracardial bubbles and symptoms partly continued after recompression to surface pressure. After 10 min of hyperbaric oxygen treatment, the symptoms disappeared completely. The same subject, as well as others, did not develop chokes with similar durations of heavy showers of intracardial gas bubbles in other experiments.

Adult

Human parotid alpha-amylase secretion as a function of chronic hyperbaric exposure.

Secretion of alpha-amylase by the human parotid gland increased significantly during eight days of hyperbaric exposure. This hyperactivity of the parotid gland presumably resulted from increased autonomic nervous system (ANS) activity attributable to (1)psychological stress in the form of anticipation; (2) dive-related factors, i.e., hyperoxia, PN2, physical stress; or (3) a combination of both. The etiology of the effect must await additional studies, but a consistent and significant elevation in alpha-amylas secretion was found. This previously undescribed effect of hyperbaric exposure indicates that parotid alpha-amylase sampling holds promise as a noninvasive means of monitoring physical and psychological stress, and as an indirect measure of ANS tone.

Adult

Radio telemetry system for obtaining body temperature during simulated diving to 1000 FSW.

An implantable radio telemetry system for transmitting deep body temperatures from dogs subjected to hyperbaric conditions was designed and tested. The design was adapted from a transmitter described by J. L. Riley, and was successfully tested both in vitro and in vivo to a simulated depth of 1000 FSW. Circuit schematic, printed circuit layout, and component layout are given.

Animals

Changes in serum ferritin and other factors associated with iron metabolism during chronic hyperbaric exposure.

Factors related to iron metabolism were determined in 20 United States Navy divers during 8 d of air saturation-excursion hyperbaric exposures. During these simulated dives progressive and correlated increases in serum ferritin and iron occurred. No significant changes were observed in bilirubin, hemoglobin, ceruloplasmin, transferrin, copper, or total iron binding capacity. The significance of the increased serum ferritin is discussed in relation to bone marrow damage and early detection of aseptic bone necrosis.

Air Pressure

Corneal edema in divers wearing hard contact lenses.

Polymethylmethacrylate (hard) contact lens-wearing Navy divers involved in hyperbaric research complained of ocular discomfort, halos, specular highlights, and decreased visual acuity during and immediately after the decompression phase of dry chamber dives. These symptoms were related to bubbles in the tear film between the cornea and hard contact lens. The bubbles developed during the decompression phase of the dive and represented the trapping (by the hard contact lens) of nitrogen outgassing from the cornea and precorneal tear film. The bubbles effected nummular patches of corneal epithelial edema persisting up to two hours after diving. Gas trapping and corneal edema were not observed in uncovered corneas or corneas covered with membrane lenses.

Adult

Scuba diving deaths: a review and approach for the pathologist.

A series of 34 cases of SCUBA-related fatalities in military personnel from the files of the Armed Forces Institute of Pathology has been presented. It may be concluded that the potential problems that can occur in the hyperbaric aquatic milieu while using scuba are not completely appreciated by pathologists. The resulting investigations of such fatalities give little hard data relevant to such entities as true incidence of barotraumatic injuries, aseptic bone necrosis, and contaminated air supply, the interrelationship of human, environmental, and life support system factors in such fatalities, and the pathophysiologic sequences leading to drowning or death due to causes other than drowning. Hyperbaric pathophysiology is reviewed with the hope that more reasonable interpretations of cause and mechanisms of death will be possible, and the entities air embolism and decompression sickness are differentiated in a similar light. The importance of the type of SCUBA is discussed, through analysis of ten operational diving fatalities, and the possibility of anoxia, hyperoxic convulsions, and hypercapnia existing with the use of rebreather SCUBA is emphasized. A general approach to the medical investigation of a SCUBA fatality is given, under broad headings including on-the-scene investigation, clothing and equipment examination, external and internal examinations, and toxicologic examination.

Adult