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MItochondrial Intervention for Resilience in Older Adults With Coenzyme Q10

Mitochondrial Intervention for Resilience in Older Adults With Coenzyme Q10

Status
Not yet recruiting
Phases
Unknown
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT07772336
Acronym
MIRO-Q
Enrollment
100
Registered
2026-08-19
Start date
2026-09-01
Completion date
2027-02-01
Last updated
2026-08-19

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

Conditions

Aging, Frailty, Mitochondria Health, Mitochondrial Dysfunction, Skin Aging

Keywords

frailty, aging, older adults, Coenzyme Q10, mitochondrial dysfunction, geroscience, functional aging

Brief summary

This randomized, double-blind, placebo-controlled clinical trial will investigate whether 10 weeks of CoQ10 supplementation can improve biological resilience and functional health in community-dwelling adults aged 65 years or older with signs of reduced biological resilience or prefrailty. Participants will be randomly assigned in a 1:1 ratio to receive either 200 mg of CoQ10 daily or matching placebo for 10 weeks. The study will assess the effects of CoQ10 supplementation on mitochondrial functional resilience, chronic low-grade inflammation, metabolic health, physical performance, cognitive function, and objective measures of skin aging. The study will also investigate whether baseline biological and functional characteristics can identify individuals who are more likely to benefit from CoQ10 supplementation. An exploratory aim is to develop a multidimensional composite index of biological resilience integrating molecular, biochemical, functional, and clinical measures of aging. The study will provide evidence on whether a mitochondria-targeted intervention with CoQ10 may represent a potential strategy for improving functional resilience and reducing features of prefrailty in older adults.

Detailed description

1. Background and Rationale Population aging is associated with an increasing prevalence of chronic diseases, functional decline, cognitive impairment, frailty, loss of independence, and reduced quality of life. Traditional medical care of older adults has largely focused on the diagnosis and treatment of individual diseases. However, contemporary geroscience emphasizes that age-related functional decline is not solely a consequence of individual diseases but results from the interaction of fundamental biological mechanisms of aging affecting multiple organ systems. An important concept within geroscience is biological resilience, defined as the capacity of an organism to maintain homeostasis, functional capacity, and regenerative potential despite internal and external stressors. Biological resilience reflects the integrated function of multiple physiological systems, including mitochondrial bioenergetics, metabolic regulation, inflammatory responses, cellular stress responses, and tissue regeneration. With advancing age, physiological reserve and the ability to adapt to stressors progressively decline. Clinically, this may manifest as prefrailty, which represents an intermediate and potentially modifiable state between healthy aging and established frailty. Current approaches to preventing or treating prefrailty primarily include physical exercise, resistance training, nutritional optimization, adequate protein intake, and prevention of malnutrition. Although these interventions can improve aspects of physical function, their effects vary between individuals, and there is currently limited evidence for biological interventions specifically targeting fundamental mechanisms contributing to reduced biological resilience. Mitochondrial dysfunction is considered one of the central mechanisms of biological aging. Mitochondria play a critical role in cellular energy production, oxidative balance, cellular stress responses, and metabolic adaptation. Impaired mitochondrial function may therefore contribute to reduced physiological reserve and may represent a potentially modifiable component of biological resilience. Coenzyme Q10 (CoQ10) is an essential component of the mitochondrial electron transport chain and participates in ATP production. Its reduced form, ubiquinol, also has an important antioxidant function. CoQ10 availability decreases with age, potentially contributing to impaired mitochondrial adaptation to metabolic and oxidative stress. Previous clinical studies have demonstrated that oral CoQ10 supplementation can increase circulating CoQ10 concentrations and may influence oxidative stress, inflammatory responses, mitochondrial function, and physical performance. However, it remains unclear whether CoQ10 supplementation can improve the broader multidimensional phenotype of reduced biological resilience in older adults. Another important unanswered question is whether the response to CoQ10 depends on the individual's baseline biological phenotype. Chronological age alone does not adequately capture the biological heterogeneity of aging. Older adults of the same chronological age may differ substantially in mitochondrial function, inflammatory burden, metabolic health, functional reserve, and susceptibility to stress. Identification of biological characteristics associated with treatment response could therefore contribute to a more personalized approach to interventions aimed at maintaining functional health in older adults. Because oral CoQ10 has limited water solubility and absorption, the bioavailability of the formulation is an important consideration. This study will use Q10Vital® (Valens Int. d.o.o., Komenda, Slovenia), a formulation containing ubiquinone in a β-cyclodextrin complex designed to improve solubility and absorption. Previous pharmacokinetic research has demonstrated substantially greater bioavailability of this formulation compared with standard crystalline ubiquinone and bioavailability comparable to ubiquinol. 2. Study Objective The primary objective of this study is to determine whether 10 weeks of daily CoQ10 supplementation increases systemic CoQ10 availability and improves markers of mitochondrial functional resilience in community-dwelling adults aged 65 years or older with signs of reduced biological resilience or prefrailty. Secondary objectives are to determine whether CoQ10 supplementation affects: 1\. markers of chronic low-grade inflammation; 2. metabolic health and insulin sensitivity; 3. physical performance and functional reserve; 4. cognitive function; 5. objective measures of skin barrier function and skin aging; 6. clinical measures of prefrailty and frailty. An additional exploratory objective is to investigate whether baseline biological, functional, cognitive, metabolic, and clinical characteristics can predict the response to CoQ10 supplementation and to develop a multidimensional composite index of biological resilience. 3\. Study Design This is a prospective, randomized, double-blind, placebo-controlled, parallel-group clinical trial. Eligible participants will be randomly assigned in a 1:1 ratio to receive either CoQ10 supplementation or matching placebo for 10 weeks. Participants, investigators, and outcome assessors will remain blinded to treatment allocation throughout the intervention period. Assessments will be performed at baseline and after completion of the 10-week intervention. The study will compare changes from baseline between the CoQ10 and placebo groups. 4\. Study Population The study population will consist of community-dwelling adults aged 65 years or older who demonstrate early signs of reduced biological resilience or prefrailty. Reduced biological resilience will be operationalized using functional and clinical indicators reflecting reduced physiological reserve. Eligible participants will meet at least one of the following criteria: • prefrailty according to the Fried frailty phenotype, defined by the presence of 1-2 criteria; • reduced physical performance, defined as an SPPB score of ≤9; • increased vulnerability according to the Clinical Frailty Scale, defined as a score of ≥4. The Fried phenotype will consider unintentional weight loss, exhaustion, reduced physical activity, slow walking speed, and reduced handgrip strength. 5\. Intervention Participants randomized to the intervention group will receive 200 mg of CoQ10 daily for 10 weeks. The CoQ10 formulation will be Q10Vital®, containing ubiquinone in a β-cyclodextrin complex. The selected dose is based on previous clinical research demonstrating increased systemic CoQ10 availability and potential effects on mitochondrial and functional outcomes, while maintaining a favorable tolerability profile. 6\. Comparator Participants randomized to the control group will receive matching placebo for 10 weeks. The placebo will be administered according to the same schedule and under the same conditions as the active intervention to maintain blinding. 7\. Randomization and Blinding Participants will be randomized in a 1:1 ratio to the CoQ10 or placebo group using a predefined randomization procedure. The study will be double-blinded. Participants, investigators responsible for clinical assessments, laboratory personnel, and outcome assessors will be unaware of treatment allocation until completion of the blinded analysis, except where unblinding is required for participant safety. 8\. Outcome Assessments The study will use a multidimensional assessment of biological resilience, combining laboratory biomarkers with functional, cognitive, metabolic, and skin-related measures. 9\. Mitochondrial and biological resilience biomarkers The following biomarkers will be assessed: • plasma CoQ10 concentration; * ubiquinol/ubiquinone ratio as a marker of CoQ10 redox status; * growth differentiation factor 15 (GDF-15) as a marker of mitochondrial and cellular stress; * fibroblast growth factor 21 (FGF-21) as a marker of mitochondrial and metabolic stress response. Changes in circulating CoQ10 concentrations will also provide an objective measure of systemic exposure to the intervention. 10\. Inflammatory biomarkers Chronic low-grade inflammation will be assessed using: * high-sensitivity C-reactive protein (hsCRP); * interleukin-6 (IL-6); * tumor necrosis factor alpha (TNF-α); * soluble urokinase plasminogen activator receptor (suPAR). These biomarkers will be used to characterize systemic inflammatory burden and immune activation associated with biological aging. 11\. Metabolic assessment Metabolic status will be evaluated using: • fasting glucose; * fasting insulin; * HOMA-IR; * HbA1c; * total cholesterol; * LDL cholesterol; * HDL cholesterol; * triglycerides; * apolipoprotein B. These parameters will be used to characterize glucose homeostasis, insulin resistance, and the atherogenic metabolic phenotype. 12\. Physical and functional assessment Physical function will be assessed using a multidimensional battery including: • Short Physical Performance Battery (SPPB); • usual walking speed; • handgrip strength; * chair stand test; * Timed Up and Go (TUG) test. Changes in frailty status will additionally be assessed using the Fried frailty phenotype. The Rockwood Clinical Frailty Scale will be used as an additional measure of global functional vulnerability. The SPPB provides an integrated assessment of lower-extremity function, including balance, gait speed, and repeated chair stands. Handgrip strength will be used as an indicator of muscle strength and functional reserve. Walking speed and TUG will provide measures of mobility and functional performance. 13\. Cognitive assessment Cognitive function will be evaluated using a multidimensional assessment including: * Montreal Cognitive Assessment (MoCA); * Trail Making Test; * verbal fluency testing; * Subjective Cognitive Decline Questionnaire (SCD-Q). These assessments will provide measures of global cognitive function, executive function, processing speed, verbal ability, and subjective cognitive status. 14\. Skin phenotype and regenerative function The skin will be assessed as a peripheral and objectively measurable phenotype potentially reflecting biological aging and tissue integrity. The following parameters will be evaluated: * skin hydration; * transepidermal water loss (TEWL); * skin elasticity; * standardized digital photography and objective image-based assessment of visible skin aging. Skin hydration and TEWL will provide measures of epidermal barrier function, while skin elasticity will provide an objective measure related to dermal structural integrity and extracellular matrix function. 15\. Laboratory Methods Blood samples will be collected at predefined study visits for measurement of biochemical and molecular biomarkers. Plasma CoQ10 concentrations and the ubiquinol/ubiquinone ratio will be determined using high-performance liquid chromatography (HPLC) or an equivalent validated analytical method. Protein biomarkers, including GDF-15, FGF-21, IL-6, TNF-α, and suPAR, will be measured using validated immunochemical methods, including enzyme-linked immunosorbent assays (ELISA) and/or multiplex immunoassays, depending on assay availability and laboratory validation. Routine biochemical measurements will be performed using standard validated laboratory methods. 17\. Primary Outcome The primary outcome will be the between-group difference in change from baseline to the end of the 10-week intervention in markers of mitochondrial functional resilience. The primary assessment will include systemic CoQ10 availability and predefined mitochondrial stress-response biomarkers, with particular emphasis on plasma CoQ10 concentration, ubiquinol/ubiquinone ratio, and GDF-15. The primary analysis will compare the change in these predefined outcomes between the CoQ10 and placebo groups. 18\. Secondary Outcomes Secondary outcomes will include changes from baseline to 10 weeks in: • inflammatory biomarkers (IL-6, TNF-α, hsCRP, and suPAR); * metabolic parameters (glucose, insulin, HOMA-IR, HbA1c, lipid profile, and ApoB); * SPPB score; * handgrip strength; * walking speed; * chair stand performance; * TUG performance; * Fried frailty phenotype; * Clinical Frailty Scale; * MoCA score; * Trail Making Test performance; * verbal fluency; * SCD-Q score; * skin hydration; * TEWL; * skin elasticity; * standardized measures of visible skin aging. 19\. Exploratory Outcomes Exploratory analyses will investigate relationships between changes in mitochondrial, inflammatory, metabolic, functional, cognitive, and skin-related measures. The study will also investigate whether baseline characteristics predict treatment response. Candidate predictors will include mitochondrial biomarkers, inflammatory markers, metabolic parameters, functional performance, frailty status, cognitive measures, and skin phenotype. An exploratory multidimensional composite index of biological resilience will be developed by integrating molecular, biochemical, functional, and clinical measures. The index will be evaluated for its ability to characterize baseline biological resilience and detect changes following intervention. The study will additionally investigate whether the baseline biological resilience phenotype modifies the effect of CoQ10 supplementation. Particular attention will be given to participants with evidence of prefrailty, impaired physical performance, elevated inflammatory biomarkers, or increased mitochondrial stress markers. 20\. Statistical Analysis The primary analysis will compare changes from baseline between the CoQ10 and placebo groups. Depending on the distribution and characteristics of the outcomes, repeated-measures models and/or analysis of covariance (ANCOVA) will be used, with adjustment for relevant baseline values. Secondary analyses will assess associations between changes in biological biomarkers and changes in clinical outcomes using correlation analyses and multivariable regression models. Responder analyses will be performed to identify participants demonstrating a clinically or biologically meaningful response to CoQ10 supplementation. Exploratory subgroup analyses will investigate whether treatment effects differ according to baseline biological resilience, prefrailty status, or other predefined characteristics. Exploratory predictive models will be developed using combinations of mitochondrial, inflammatory, metabolic, functional, cognitive, and skin-related variables to investigate whether the baseline phenotype can predict response to CoQ10. Where multiple biomarkers are evaluated simultaneously, appropriate methods for controlling the false discovery rate or other correction for multiple testing will be applied. The primary analysis population will follow the intention-to-treat principle. 21\. Safety Assessment CoQ10 supplementation has a generally favorable safety and tolerability profile. Nevertheless, participants will be monitored throughout the study for adverse events, changes in health status, and any symptoms potentially related to the intervention. Any adverse events occurring during the study will be documented and assessed for severity and potential relationship to the study intervention. Appropriate medical evaluation and management will be provided when necessary. 22\. Scientific Rationale and Expected Contribution The study is designed to investigate whether mitochondrial functional resilience represents a modifiable component of biological resilience in older adults. Rather than evaluating CoQ10 solely on the basis of a single clinical outcome, this study uses a multidimensional approach integrating mitochondrial, inflammatory, metabolic, functional, cognitive, and skin-related measures. This approach is intended to determine whether a mitochondria-targeted intervention can influence multiple interconnected components of the aging phenotype. A further objective is to move beyond an "one intervention for all" approach by investigating whether individual biological characteristics can predict treatment response. If specific baseline biomarkers or combinations of biological and functional characteristics are associated with greater benefit, these findings could provide a basis for future personalized interventions targeting reduced biological resilience. The study may therefore contribute to the understanding of mitochondrial dysfunction as a potentially modifiable mechanism of functional aging and provide preliminary evidence for the use of multidimensional biological phenotyping in the identification of older adults who may benefit from targeted interventions. 22\. Ethical Considerations The study will be conducted in accordance with the principles of the Declaration of Helsinki, Good Clinical Practice, applicable national legislation, and European data protection requirements. Approval from the relevant ethics committee will be obtained before initiation of the study. All participants will receive comprehensive information about the purpose, procedures, potential benefits, and potential risks of the study before participation. Written informed consent will be obtained before any study-specific procedures are performed. Participation will be voluntary, and participants may withdraw from the study at any time without consequences for their subsequent medical care. Participant data and biological samples will be coded and handled confidentially. Personal data will be processed in accordance with applicable data protection legislation, including the General Data Protection Regulation (GDPR). Biological phenotyping of aging and biological resilience will be used for research purposes and will not be used to stigmatize or clinically categorize participants beyond the purposes defined in the study protocol.

Interventions

DIETARY_SUPPLEMENTQ10Vital® (CoQ10, ubiquinone)

Participants randomized to the intervention group will receive Q10Vital®, a CoQ10 formulation containing ubiquinone in a β-cyclodextrin complex designed to improve solubility and oral bioavailability. Participants will take 200 mg of CoQ10 once daily for 10 weeks. The intervention will be administered orally according to the study protocol. Q10Vital® has demonstrated improved bioavailability compared with standard crystalline ubiquinone and bioavailability comparable to ubiquinol in previous pharmacokinetic research. The intervention is intended to increase systemic CoQ10 availability and assess its potential effects on mitochondrial functional resilience and related biological and clinical measures of aging.

OTHERPlacebo

Participants randomized to the control group will receive a matching placebo once daily for 10 weeks. The placebo will be identical or sufficiently similar in appearance, packaging, administration schedule, and dosage form to the Q10Vital® intervention to maintain blinding throughout the study. The placebo will contain no active CoQ10 ingredient. Participants will take the placebo orally according to the same schedule as the active intervention.

Sponsors

University Medical Centre Ljubljana
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
QUADRUPLE (Subject, Caregiver, Investigator, Outcomes Assessor)

Masking description

The study will be quadruple-masked. Participants, care providers, investigators, and outcome assessors will be unaware of treatment allocation. CoQ10 and placebo will be provided in identical packaging and dosage forms to maintain blinding throughout the 10-week intervention. Treatment allocation will remain concealed until completion of the predefined study analyses, except when unblinding is required for participant safety.

Intervention model description

Participants will be randomly assigned in a 1:1 ratio to one of two parallel treatment groups. The intervention group will receive 200 mg of CoQ10 daily for 10 weeks, while the control group will receive matching placebo. Participants, investigators, and outcome assessors will be blinded to treatment allocation. Assessments of biological, functional, cognitive, metabolic, and skin-related outcomes will be performed at baseline and after the 10-week intervention. Changes in outcomes will be compared between the CoQ10 and placebo groups.

Eligibility

Sex/Gender
ALL
Age
65 Years to No maximum
Healthy volunteers
Yes

Inclusion criteria

* Age 65 years or older. * Community-dwelling older adult. * Presence of signs of reduced biological resilience or prefrailty, defined by meeting at least one of the following criteria: * Prefrailty according to the Fried frailty phenotype, defined as the presence of 1-2 of the following criteria: unintentional weight loss, self-reported exhaustion, reduced physical activity, slow walking speed, or reduced handgrip strength; or * Reduced physical performance, defined as a Short Physical Performance Battery (SPPB) score of ≤9; or * Increased functional vulnerability, defined as a Clinical Frailty Scale (CFS) score of ≥4. * Ability to understand the study procedures and comply with the study protocol. * Ability and willingness to provide written informed consent before participation.

Exclusion criteria

* Established frailty with severe functional impairment that would interfere with study participation or outcome assessment. * Advanced dementia or cognitive impairment preventing informed consent or reliable participation in study assessments. * Active malignant disease or ongoing cancer treatment. * Acute inflammatory disease or acute infection at the time of enrollment. * Acute or unstable medical condition that could substantially affect functional performance, cognitive assessment, or the safety of the intervention. * Any medical condition considered by the investigator to make participation inappropriate or unsafe. * Current use of CoQ10 supplementation at a dose that could interfere with assessment of the study intervention, unless discontinued for the predefined washout period. * Known hypersensitivity or intolerance to CoQ10 or any component of the study product. * Participation in another interventional clinical trial that could affect the outcomes of the present study.

Design outcomes

Primary

MeasureTime frameDescription
Change in plasma GDF-15 concentrationBaseline to Week 10Change in plasma GDF-15 concentration from baseline to the end of the 10-week intervention, comparing the CoQ10 and placebo groups.

Secondary

MeasureTime frameDescription
CoQ10 availabilityBaseline to Week 10Change in plasma CoQ10 concentration
Additional mitochondrial biomarkersBaseline to week 10Change in plasma FGF-21 concentration

Contacts

CONTACTMišo Šabović, MD, PhD
miso.sabovic@kclj.si+38615224280
PRINCIPAL_INVESTIGATORMišo Šabović, MD, PhD

Department of Vascular Diseases, Division of Internal Medicine, University Medical Centre Ljubljana

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Aug 20, 2026