Cluster Training With Blood Flow Restriction and 200-m Freestyle Performance, FGF-2, and VEGF-A Responses in Competitive Swimmers: A Matched Controlled Study
Cluster Training With Blood Flow Restriction and 200-m Freestyle Performance, FGF-2, and VEGF-A Responses in Competitive Swimmers: A Matched Controlled Study
This study evaluated whether adding blood flow restriction (BFR) to cluster-based training could improve swimming performance and selected physiological responses in competitive swimmers. Twenty competitive swimmers were assigned using a matched, non-randomized design to either an experimental group performing cluster training combined with BFR or a control group performing the same cluster training without BFR. The intervention lasted 8 weeks, with five training sessions per week. The primary outcome was 200-m freestyle performance time. Secondary outcomes included serum concentrations of fibroblast growth factor-2 (FGF-2) and vascular endothelial growth factor-A (VEGF-A), standing long jump performance, mean 50-m split time during a 150-m swimming test, and repetitions completed during a cadence-controlled Burpee test. The study was designed to determine whether BFR provided additional performance and physiological benefits beyond cluster training alone.
Inclusion Criteria:
Exclusion Criteria:
Current use of medications known to affect vascular tone or blood coagulation. Musculoskeletal injury or medical condition preventing participation in maximal swimming or dry-land training.
Attendance below 85% of the scheduled intervention sessions.
Blood flow restriction (BFR) training is a training method in which pneumatic cuffs are applied proximally to the limbs to partially restrict vascular flow during exercise. Cluster training divides traditional exercise sets into smaller clusters of repetitions separated by short intra-set recovery periods. Combining these two approaches may increase the physiological stimulus of training while allowing repeated high-quality exercise efforts.
This controlled, non-randomized matched-intervention study included 20 competitive 200-m freestyle swimmers. Participants were matched according to baseline 200-m freestyle performance, sex, and standing long jump distance and were assigned to one of two groups. The experimental group completed cluster training combined with BFR, whereas the control group completed cluster training without BFR.
The training intervention lasted 8 weeks and consisted of five 90-minute training sessions per week. Sessions included a standardized warm-up, a main training component, and a cool-down. Overall cardiovascular training intensity was prescribed relative to individual maximal heart rate, and cluster-based resistance exercises incorporated short intra-set recovery intervals.
BFR was applied only in the experimental group during selected dry-land cluster exercises using pneumatic cuffs positioned proximally on the upper arms and thighs. The cuffs remained inflated during exercise execution and short intra-set recovery periods and were deflated during the main inter-set recovery periods.
The primary outcome was change in 200-m freestyle performance time from baseline to the end of the 8-week intervention. Secondary outcomes included serum FGF-2 and VEGF-A concentrations, standing long jump distance, mean 50-m split time during a maximal 150-m swimming test, and performance in a cadence-controlled Burpee test. Blood samples were collected under standardized resting conditions to assess serum FGF-2 and VEGF-A concentrations.
The main objective was to determine whether the addition of BFR to cluster training was associated with greater improvements in swimming performance, selected physical-performance outcomes, and serum angiogenesis-related biomarkers compared with cluster training alone.