Frailty is the term commonly utilized to describe the geriatric syndrome that exposes the elderly to increased risk of negative health-related events. The frailty phenotypes (PF: physical or CF: cognitive) have demonstrated to predict the major negative health-related outcomes in the old population and show extensive similarities with sarcopenia (for PF) or dementia (for CF). However, the role of neurophysiological and biological factors contributing to the physical and cognitive frail condition, and in particular in which way mitochondrial dysfunction, as well as the hypertrophic and atrophic pathways assessed by genes expression, metabolomics and microbiota composition are contributing to these frail conditions, are still under debate. Therefore, the aim of this trial will be to make evidence based on the behaviors and the strategies that promote healthy lifestyle and successful human aging.
In the majority of the world, the population is living to a greater age. However, older age is usually associated with elevated risk of several pathologies, as well as age-related organ dysfunctions, which in turn can accelerate functional impairments, disability, or death. To identify this geriatric syndrome the term frailty phenotype has been commonly utilized. In particular, the frailty phenotype can be distinguished in physical frailty (PF) phenotype or cognitive frailty (CF) phenotype. Despite several groups of researchers tried to develop preventive interventions to counteract the physical and cognitive frail condition of elderly, the success of this task has been tempered by the lack of standardized, and universally agreed protocols. Moreover, the limited knowledge of the neurophysiological, and biological determinants of these conditions has precluded important advances in the research of this domain. Many factors combine to achieve a successful aging: genetics, health care and healty lifestile. Therefore, the aim of the current trial will be to understand the behaviors and the strategies that promote healthy lifestyle and successful human aging. Oldest old participants with CF and PF will be selected from the neurorehabilitation unit of the University Hospital of Verona (Italy). Healthy oldest old and young participants will be recruited from the section of Movement Sciences of the University of Verona. After a first phase of neurophysiological and biological examinations that will involve all the 4 groups, only CF and PF participants will be randomly assigned to an intervention program (physical exercise, physical+cognitive exercise or control). Frail participants assigned to exercise groups will then perform 1 year of intervention, 3 days per week, 1 hour per day. Afterwards, the three groups of intervention will undergo the same neurophysiological and biological examinations of the beginning of the study.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
NONE
Enrollment
180
The ET program will consist of endurance exercises at 70% of maximal Heart Rate and resistance exercises at 85% of 1 repetition maximum.
ET: The intervention program will consist of endurance exercises at 70% of maximal Heart Rate and resistance exercises at 85% of 1 repetition maximum. CT: The intervention program will be configured as a cognitive rehabilitation and mainly memory rehabilitation: the participants will be trained in practicing restorative and compensatory mnemonic techniques, such as visual imagery, face-name association, calendar, notes and prompts.
NO changes in lifestyle
University of Verona
Verona, Italy
RECRUITINGExpression of potential biomarkers (circulating miRNA)
Noncoding RNAs, in particular, microRNAs (miRNAs), are a new regulatory system which plays a pivotal role in skeletal muscle adaptation and repairing.
Time frame: 3 years
Structural cerebral cortex adaptations (TMS)
Single-pulse TMS will be used to map the brain area representing the vastus lateralis (VL).
Time frame: 3 years
Functional cerebral cortex adaptations (TMS)
Single-pulse TMS will be used to investigate the excitability of the corticospinal system. A double-cone coil will be used to stimulate the leg area of the primary motor cortex (M1).
Time frame: 3 years
Modifications in the metabolism of cerebral areas (ASL-MRI)
To assess non-invasively cerebral blood flow (CBF)
Time frame: 3 years
Muscle mass alterations (DXA)
Muscle mass will be assessed with DXA
Time frame: 3 years
Alveolar profiles
Changes in biogenic volatile organic compound concentrations can be used to mirror metabolic or pathophysiological processes in the whole body
Time frame: 3 years
Changes in muscular fiber type
Outcome of the changes in fiber typing on the components of the muscle mechanics in each group and Pre-Post intervention in CF and PF groups will be evaluated.
Time frame: 3 years
Changes in neuromuscular control 1
The force rate of development during a maximum voluntary contraction and a tetanic stimulation will be compared in order to estimate the role of central command flow to the muscle in changing the efficiency of the tension development at the tendon.
Time frame: 3 years
Changes in neuromuscular control 2
The EMG envelope rate of development during a maximum voluntary contraction and a tetanic stimulation will be compared in order to estimate the role of central command flow to the muscle in changing the efficiency of the tension development at the tendon.
Time frame: 3 years
Mitochondrial Respiration
Changes in mitochondrial respiration function will be measured to asses the level of mitochondrial dysfunction.
Time frame: 3 years
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