Denne siden ble automatisk oversatt og nøyaktigheten av oversettelsen er ikke garantert. Vennligst referer til engelsk versjon for en kildetekst.

Effects of Obesity on Autophagy and mTORC1 Signalling in Skeletal Muscle

17. august 2026 oppdatert av: Nathan Hodson, University of Birmingham

Understanding the Effects of Obesity on Autophagic and mTORC1 Signalling Following Resistance Exercise and Protein Ingestion in Skeletal Muscle.

It is well known that individuals living with overweight or obesity are not able to activate skeletal muscle growth processes to the same extent as lean individuals following activities such as weightlifting (resistance exercise) or protein ingestion. However, the underlying cell signalling pathways which may be regulating these impairments are not fully understood. This study aims to understand if skeletal muscle signalling responses to resistance exercise and protein intake differ between lean individuals and those living with overweight or obesity. The investigators will recruit a cohort of lean individuals and a cohort of individuals living with overweight/obesity who will undertake a bout of single-leg resistance exercise and consume a protein-rich drink. Before and after this, muscle samples will be obtained from each leg of participants at different timepoints to understand the effects of exercise and feeding combined (exercised leg) and feeding alone (rested leg) on different cellular processes which regulate muscle growth. This will allow the investigators to understand if their are specific pathways within skeletal muscle which could be targeted in future interventions to overcome impaired protein metabolism in those living with overweight/obesity.

Studieoversikt

Detaljert beskrivelse

As skeletal muscle is a major contributor to basal metabolic rate and glucose control, increasing the quality of skeletal muscle in those living with obesity could improve the long-term success of subsequent weight loss programs. There are two main activities which are often recommended to improve skeletal muscle quality, resistance exercise (i.e. weightlifting) and adequate protein intake, however, recent research has suggested that individuals living with obesity do not respond as well to these activities as a non-obese person. This research project aims to investigate if certain processes within muscle cells, which regulate muscle size and quality, are reduced in people living with obesity following a single session of resistance exercise and a protein-rich drink. This will hopefully identify processes we can target specifically to improve skeletal muscle quality. The project involves participants attending the lab and completing a session of single-leg resistance exercise and ingesting a protein drink. Before and after this the investigators will take a number of blood samples and small pieces of muscle from each thigh to understand how muscle reacts to exercise/feeding and whether this differs between individuals with and without obesity. Following the visit investigators will the conduct a variety of laboratory analysis on these samples to understand the responses. Overall, this project has the potential to help design future programmes which can improve skeletal muscle quality in those living with obesity, improving general health and increasing success of weight loss interventions.

To date, the acute effects anabolic stimulation by resistance exercise and protein ingestion in individuals with obesity have been shown to be blunted. However, the mechanisms responsible for this have scarcely been investigated. We intend to build on current evidence by identifying what causes this blunted response to anabolic stimulation in individuals with obesity.

This project aims to determine whether individuals with obesity exhibit differential mTORC1-lysosomal translocation in response to anabolic signaling following a single bout of resistance exercise combined with protein ingestion.

Studietype

Observasjonsmessig

Registrering (Antatt)

24

Kontakter og plasseringer

Denne delen inneholder kontaktinformasjon for de som utfører studien, og informasjon om hvor denne studien blir utført.

Studiekontakt

Studiesteder

      • Birmingham, Storbritannia, B152TT
        • Rekruttering
        • School of Sport, Exercise and Rehabilitation Sciences, University of Birmingham
        • Ta kontakt med:
        • Ta kontakt med:
        • Hovedetterforsker:
          • Nathan Hodson, PhD
        • Underetterforsker:
          • Jennifer Barrett, PhD
        • Underetterforsker:
          • Jordan Acheson, MSc

Deltakelseskriterier

Forskere ser etter personer som passer til en bestemt beskrivelse, kalt kvalifikasjonskriterier. Noen eksempler på disse kriteriene er en persons generelle helsetilstand eller tidligere behandlinger.

Kvalifikasjonskriterier

Alder som er kvalifisert for studier

  • Voksen

Tar imot friske frivillige

Ja

Prøvetakingsmetode

Ikke-sannsynlighetsprøve

Studiepopulasjon

Participants will be recruited from around the West Midlands area via recruitment media.

Beskrivelse

Inclusion Criteria:

  • Age - 18-45yrs
  • BMI - 18.5-24.9kg/m2 OR >28kg/m2 (self-declaration, or calculated by research team based on height and weight)
  • Weight Stable i.e. no change in weight of more than 5% in previous 6 months
  • Meeting UK Physical activity guidelines (150 mins moderate or 75 mins vigorous activity/wk)
  • Not involved in structured exercise training in previous 6 months
  • No other diagnosed metabolic or neuromuscular conditions (self-declaration)

Exclusion Criteria:

  • Currently using anti-diabetes medication (insulin, metformin, sulphonylureas, meglitinides, thiazolidinediones, DPP- 4 inhibitors, GLP-1 inhibitors).
  • Currently taking cholesterol lowering medications (statins)
  • Currently engaged in active weight loss programmes or using weight loss medication
  • Chronic kidney disease (moderate to severe reduction in kidney function), defined as eGFR <30 ml/min/1.73m2 identified by self declaration.
  • Pregnant or breast feeding
  • Currently using anti-coagulation medication
  • Hypothyroidism
  • Type 1 diabetes
  • Current or recent weakness/injury to either leg that may affect muscle function or ability to exercise
  • Current gastrointestinal issue/condition that may affect digestion and absorption of protein drink
  • Individuals who follow a vegan diet or have intolerance/allergies to Whey protein.
  • Previous adverse reaction to local anaethetic (lidocaine or marcaine).

Studieplan

Denne delen gir detaljer om studieplanen, inkludert hvordan studien er utformet og hva studien måler.

Hvordan er studiet utformet?

Designdetaljer

Kohorter og intervensjoner

Gruppe / Kohort
Intervensjon / Behandling
Lean Individuals
This cohort will be aged between 18-45yrs and have a Body Mass index (BMI) of 18.5-25.9kg/m2. They will also have been weight-stable (<5% bodyweight change in previous 6 months).
On five occasions throughout the experimental visit, skeletal muscle biopsies will be obtained from the vastus lateralis of participants (3 in rested leg, 2 in exercised leg). These will be completed under local anaesthetic using the Bergstrom needle technique, modified for suction.
Upon arrival at the experimental visit, participant will have a cannula inserted into their antecubital vein for repeated blood sampling. 12 blood samples will then be taken throughout the course of the experimental trial from which both plasma and serum will be isolated.
Following completion of the acute, single-leg resistance exercise bout, participants will consumed a protein-rich beverage containing 0.25g/kg bodyweight whey protein (dissolved in 300ml water).
During the experimental visit, participants will complete an acute bout of single-leg knee extensions on a randomised leg. This will be comprised of 6 sets of knee extensions at 80% of participants pre-determined 1 repetition maximum (1RM), with each set completed to volitional failure separated by a 2 minute rest interval.
During Visit 1 of the study, participants will undergo a whole-body DEXA scan to assess body composition (body fat and fate-free mass). This short, painless scan exposes participants to a small amount of radiation which is equivalent to the amount exposed to during a transatlantic flight.
During Visit 1 of the study, participants will undergo maximal knee extension strength testing using a randomised leg (which will complete exercise during experimental trial). This will involve increasing the weight on the knee extension machine until the participant can no longer complete a single repetition. This weight will then be used to calculate the workload at which the participant will complete the exercise bout during the experimental trial.
Andre navn:
  • 1RM testing
Individuals with Overweight or Obesity
This cohort will be aged between 18-45yrs and have a Body Mass index (BMI) of >28kg/m2. They will also have been weight-stable (<5% bodyweight change in previous 6 months).
On five occasions throughout the experimental visit, skeletal muscle biopsies will be obtained from the vastus lateralis of participants (3 in rested leg, 2 in exercised leg). These will be completed under local anaesthetic using the Bergstrom needle technique, modified for suction.
Upon arrival at the experimental visit, participant will have a cannula inserted into their antecubital vein for repeated blood sampling. 12 blood samples will then be taken throughout the course of the experimental trial from which both plasma and serum will be isolated.
Following completion of the acute, single-leg resistance exercise bout, participants will consumed a protein-rich beverage containing 0.25g/kg bodyweight whey protein (dissolved in 300ml water).
During the experimental visit, participants will complete an acute bout of single-leg knee extensions on a randomised leg. This will be comprised of 6 sets of knee extensions at 80% of participants pre-determined 1 repetition maximum (1RM), with each set completed to volitional failure separated by a 2 minute rest interval.
During Visit 1 of the study, participants will undergo a whole-body DEXA scan to assess body composition (body fat and fate-free mass). This short, painless scan exposes participants to a small amount of radiation which is equivalent to the amount exposed to during a transatlantic flight.
During Visit 1 of the study, participants will undergo maximal knee extension strength testing using a randomised leg (which will complete exercise during experimental trial). This will involve increasing the weight on the knee extension machine until the participant can no longer complete a single repetition. This weight will then be used to calculate the workload at which the participant will complete the exercise bout during the experimental trial.
Andre navn:
  • 1RM testing

Hva måler studien?

Primære resultatmål

Resultatmål
Tiltaksbeskrivelse
Tidsramme
mTORC1-lysosomal translocation
Tidsramme: From completion of experimental testing/biosample collection until end of study, an average of 1 year.
The translocation of the mTORC1-lysosomal complex toward the cell periphery following resistance exercise and/or protein ingestion will be assessed in skeletal muscle cross sections via immunofluorescence microscopy.
From completion of experimental testing/biosample collection until end of study, an average of 1 year.

Sekundære resultatmål

Resultatmål
Tiltaksbeskrivelse
Tidsramme
mTORC1 activation
Tidsramme: From completion of experimental testing/biosample collection until end of study, an average of 1 year.
Markers of mTORC1 activation (phosphorylation of downstream signalling targets) will be assessed via immunoblotting on homogenised skeletal muscle samples.
From completion of experimental testing/biosample collection until end of study, an average of 1 year.
Autophagic Flux
Tidsramme: From completion of experimental testing/biosample collection until end of study, an average of 1 year.
Skeletal muscle autophagic flux will be assessed on skeletal muscle samples using a novel ex vivo assay followed by immunoblotting.
From completion of experimental testing/biosample collection until end of study, an average of 1 year.
Lysosomal Content
Tidsramme: From completion of experimental testing/biosample collection until end of study, an average of 1 year.
Skeletal muscle lysosomal content will be assessed via immunoblotting for markers of the lysosome on homogenised skeletal muscle samples
From completion of experimental testing/biosample collection until end of study, an average of 1 year.

Andre resultatmål

Resultatmål
Tiltaksbeskrivelse
Tidsramme
Circulating Amino Acids Concentrations
Tidsramme: From completion of experimental testing/biosample collection until end of study, an average of 1 year.
Amino acid concentrations will be assessed via high performance liquid chromatography to determine how much of the protein ingested arrives in circulation
From completion of experimental testing/biosample collection until end of study, an average of 1 year.
Circulating Hormone Concentrations
Tidsramme: From completion of experimental testing/biosample collection until end of study, an average of 1 year.
Hormones associated with glycaemic control (glucose & insulin) will be assessed in plasma/serum samples via colorometric assay or ELISA
From completion of experimental testing/biosample collection until end of study, an average of 1 year.

Samarbeidspartnere og etterforskere

Det er her du vil finne personer og organisasjoner som er involvert i denne studien.

Etterforskere

  • Hovedetterforsker: Nathan Hodson, University of Birmingham

Studierekorddatoer

Disse datoene sporer fremdriften for innsending av studieposter og sammendragsresultater til ClinicalTrials.gov. Studieposter og rapporterte resultater gjennomgås av National Library of Medicine (NLM) for å sikre at de oppfyller spesifikke kvalitetskontrollstandarder før de legges ut på det offentlige nettstedet.

Studer hoveddatoer

Studiestart (Faktiske)

15. april 2026

Primær fullføring (Antatt)

1. desember 2026

Studiet fullført (Antatt)

1. desember 2027

Datoer for studieregistrering

Først innsendt

12. august 2026

Først innsendt som oppfylte QC-kriteriene

17. august 2026

Først lagt ut (Faktiske)

19. august 2026

Oppdateringer av studieposter

Sist oppdatering lagt ut (Faktiske)

19. august 2026

Siste oppdatering sendt inn som oppfylte QC-kriteriene

17. august 2026

Sist bekreftet

1. august 2026

Mer informasjon

Begreper knyttet til denne studien

Plan for individuelle deltakerdata (IPD)

Planlegger du å dele individuelle deltakerdata (IPD)?

JA

IPD-planbeskrivelse

IPD used in publications arising from the project will be shared upon request

IPD-delingstidsramme

IPD will be available upon request following publication of the IPD with no end date

Tilgangskriterier for IPD-deling

Qualified researchers with an approved scientifically sound research proposal from recognized academic, clinical, or commercial institutions can request IPD from the principal investigator. In such cases, the de-identified data long with the study protocol will be provided via a secure cloud-based research environment.

IPD-deling Støtteinformasjonstype

  • STUDY_PROTOCOL

Legemiddel- og utstyrsinformasjon, studiedokumenter

Studerer et amerikansk FDA-regulert medikamentprodukt

Nei

Studerer et amerikansk FDA-regulert enhetsprodukt

Nei

Denne informasjonen ble hentet direkte fra nettstedet clinicaltrials.gov uten noen endringer. Hvis du har noen forespørsler om å endre, fjerne eller oppdatere studiedetaljene dine, vennligst kontakt register@clinicaltrials.gov. Så snart en endring er implementert på clinicaltrials.gov, vil denne også bli oppdatert automatisk på nettstedet vårt. .

Abonnere