Epigenetic patterns reflect how lifestyle choices influence gene expression without changing DNA
Epigenetics refers to modifications to DNA that affect gene expression without altering the underlying genetic sequence. These modifications, such as DNA methylation, act as switches that can turn genes on or off, influencing cellular function and overall health. Unlike your genetic code, which remains relatively static throughout life, your epigenetic patterns are dynamic and responsive to environment, lifestyle, nutrition, and aging.
Unlike static genetic code, your epigenome is dynamic and responsive to environment. This test examines 20 markers across 7 hormonal systems affecting menopausal experience and wellbeing. Methylation analysis reveals biological patterns invisible to standard hormone tests. Your results create a personalised blueprint for targeted hormonal support.
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How your lifestyle choices influence gene expression without changing DNAâand why this matters
Epigenetics refers to modifications to DNA that affect gene expression without altering the underlying genetic sequence. These modifications, such as DNA methylation, act as switches that can turn genes on or off, influencing brain function and cognitive health.
Unlike your genetic code, which remains relatively static throughout life, your epigenetic patterns are dynamic and responsive to environment, lifestyle, nutrition, and aging.
The epigenome plays a crucial role in numerous physiological processes:
Research increasingly demonstrates that epigenetic patterns are closely linked to hormonal health and menopausal experience, with specific methylation signatures associated with symptom intensity, transition timing, and long-term wellbeing. By analysing these patterns, we can gain unprecedented insights into your hormonal profile and potential optimisation pathways.
Understanding your epigenetic patterns provides:
While standard hormone tests only measure current levels, our analysis examines a diverse array of methylation sites associated with key aspects of hormonal function and menopausal wellbeing across 20 specialised markers:
Core Menopausal Hormones +
Understanding your sex hormone tendencies can help identify opportunities for enhancing balance, energy, and transitional wellbeing.
Mood & Sleep Regulation+
These insights reveal how your neurohormonal systems may be influencing emotional balance and sleep qualityâgiving you specific areas to target for optimising wellbeing during hormonal transitions.
Metabolic & Energy Regulation +
Discover whether your energy and metabolic challenges stem from thyroid patterns or other factorsâand how to build resilience tailored to your unique profile.
Hot Flush & Sleep Support +
These insights help you understand whether your temperature regulation and sleep challenges are influenced by specific epigenetic patternsâand how to optimise your approach accordingly.
Bone Health +
See how your biology influences skeletal integrity and mineral balanceâso you can optimise your environment for sustained bone health during and after menopause.
Vitamin & Nutrient Processing +
This module evaluates DNA methylation patterns in genes controlling nutrient absorption, activation, and utilisationâprocesses that directly support hormonal balance and menopausal wellbeing.
Hormone Metabolism +
This module evaluates DNA methylation patterns in genes governing hormone processing, clearance, and metabolite management.
Inflammatory Balance +
This module evaluates DNA methylation patterns in genes controlling inflammatory response, immune regulation, and cellular protection.
Methylation Depth and Precision +
Our technology allows for analysis at multiple levels of methylation specificity:
How we transform complex methylation data into actionable insights.
Our proprietary scoring system synthesises multiple epigenetic indicators into actionable metrics across each module.
Your comprehensive dashboard translates complex epigenetic data into practical understanding:
Our technology allows for analysis at multiple levels of methylation specificity:
Our analysis and interpretation are grounded in peer-reviewed epigenetic research, including:
Our analysis begins with a simple, non-invasive collection process:
Our analysis and interpretation are grounded in peer-reviewed epigenetic research, including:
Epigenetic regulation plays a vital role in cognitive performance, influencing domains such as attention, memory, and executive function. Research highlights how DNA methylation contributes to brain plasticity, cognitive aging, and neurodegenerative conditions like Alzheimer's, offering promising directions for cognitive health interventions.
Methylation pathways are increasingly recognised as key modulators of neurotransmitter synthesis and mental health. Studies connect nutritional factors such as choline with DNA methylation, influencing brain development and function, and propose epigenetics as a foundation for advancing psychiatric care.
Sleep and stress both drive epigenetic modifications that affect cognition and emotional regulation. Research reveals how disrupted sleep patterns influence methylation profiles tied to cognitive performance, underlining the importance of sleep hygiene in mental and neurological wellbeing.
Inflammation and mitochondrial dysfunction are emerging as critical epigenetic targets in cognitive decline. Studies explore how inflammatory pathways and impaired neural energy metabolism contribute to cognitive impairment, suggesting new routes for prevention and therapeutic intervention.
Advanced technologies like the MethylationEPIC BeadChip and NovaSeq 6000 enable high-throughput, genome-wide analysis of DNA methylation patterns. These platforms support scalable cognitive epigenetics research, while TGA-registered components ensure reliability for clinical application in Australia.
The Cognition Epigenetic Profile achieves its full potential when combined with our other testing modalities:
Together, these insights provide a complete view of your cognitive landscape, enabling truly personalised approaches to optimisation.
Our platform is designed for continuous advancement:
This test is part of the broader P4Health platform â built on our Predictive, Preventative, Personalised, and Participatory approach. We don't just analyse data; we help you act on it through a connected ecosystem of tracking tools, health journeys, and community-led support.
Our comprehensive epigenetic analysis supports various applications:
Our clinical partnership program provides specialised access to patient management tools, batch testing options, and practitioner resources.
Our enterprise solutions offer scalable testing, analytics dashboards, and group health optimisation programs.
This scientific overview is provided for educational purposes only and is not intended to diagnose, treat, cure, or prevent any disease. The epigenetic analysis is designed to provide insights about biological patterns that may support general wellness. Our analysis uses TGA-registered technology (ARTG entries 297844 and 398180). Individual results may vary. Always consult with your healthcare professional regarding health concerns or before making significant changes to your health regimen.