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Impact of Exercise on Immune System and Metabolism in Football Players

The Influence of Physical Exercise on Chosen Parameters of the Immune System, Prooxidant-Antioxidant Balance, and Iron Metabolism in Football Players With Various Training Levels

Status
Completed
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT06201052
Acronym
IEISM
Enrollment
40
Registered
2024-01-11
Start date
2017-02-01
Completion date
2018-11-15
Last updated
2024-07-10

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Healthy

Brief summary

Physical exercise, especially of high intensity, is a significant burden to the athlete's body. It should be emphasized that achieving high results in competitive sports requires significant, sometimes extreme, exercise loads during training, which may result in homeostasis disorders, adversely affecting athletes' fitness. Intense and prolonged physical exercise elevates reactive oxygen species, potentially impacting immune function. The mechanism, particularly in high-intensity activities, remains incompletely understood. Excessive oxygen radicals may induce metabolic changes, causing rapid erythrocyte damage and elevated redox-active free iron. This iron increase can be harmful, increasing oxidative stress and immune system activation. The sustained negative impact that may be observed even during post-workout recovery needs further exploration. This study aims to explain the impact of an intense exercise test on the immune system, pro-antioxidant balance, and iron metabolism in athletes with varying training levels. The primary questions it seeks to address are: 1. How do athletes' experience and training background influence the immune system's response, pro-antioxidant balance, and iron regulation? 2. Can the level of adaptation to physical exercise (training status) affect the rate of regeneration and the time required to return to pre-exercise homeostasis?

Detailed description

The study included 40 football players (19 juniors and 21 seniors). The average training experience for junior players was 8.37 years, and for the senior group, it was 16.4 years. All athletes underwent the Multistage 20-meter shuttle run test (Beep Test). Players were informed about the test procedures and additionally motivated by the trainer to exert maximum effort. Each attempt was preceded by a warm-up, consisting of a 5-minute low-intensity jog. The Beep Test was supervised by the Team trainer using a program as a monitoring tool to examine changes in the level of cardio-respiratory fitness across all age groups. Blood samples were collected at rest, before the exercise test, then 1 minute after the end of the exercise test, after 3 hours of recovery, and finally, after 24 hours. Blood was drawn from the antecubital vein, with 12 ml collected each time.

Interventions

OTHERExercise test

Beep Test for measuring aerobic power

Sponsors

Nicolaus Copernicus University
CollaboratorOTHER
Poznan University of Physical Education
Lead SponsorOTHER

Study design

Observational model
COHORT
Time perspective
RETROSPECTIVE

Eligibility

Sex/Gender
MALE
Age
22 Years to 37 Years
Healthy volunteers
Yes

Inclusion criteria

* Competitive football training for at least 3 years * Male * Not taking any medications throughout the study * Provide voluntary consent for participation in the study

Exclusion criteria

* Any healthy problems

Design outcomes

Primary

MeasureTime frameDescription
Changes in iron levelAt rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of iron management
Changes in UIBC (unsaturated iron-binding capacity)At rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of iron management
Changes in TIBC (total iron-binding capacity)At rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of iron management
Changes in hepcidinAt rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of iron management
Changes in lactoferrinAt rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of iron management
Changes in IL-6 (interleukin-6)At rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of immune system
Changes in IL-10 (interleukin-10)At rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of immune system
Changes in TNF-α (tumor necrosis factor-alpha)At rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of immune response
Changes in tryptophanAt rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of immune response
Changes in IGF-1 (insulin-like growth factor 1)At rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of hormonal response
Changes in testosteroneAt rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of hormonal response
Changes in cortisolAt rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of hormonal response
Changes in serotoninAt rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of neurohormonal response
Changes in myoglobinAt rest (before the exercise test), 1 minute after the end of the test, after 3 hours, and 24 hours of recovery.marker of muscle damage

Countries

Poland

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026