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The Impact of Genomic Instability on Skin Health and Aging

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Manage episode 413333555 series 2868748
Conteúdo fornecido por Young Goose. Todo o conteúdo do podcast, incluindo episódios, gráficos e descrições de podcast, é carregado e fornecido diretamente por Young Goose ou por seu parceiro de plataforma de podcast. Se você acredita que alguém está usando seu trabalho protegido por direitos autorais sem sua permissão, siga o processo descrito aqui https://pt.player.fm/legal.

Did you know that sun exposure can not only cause burn, but also damage your DNA? Genomic instability is like rust that builds up and damages the core functions of your body's DNA. External aggressors, like the sun, can build up genomic instability causing your DNA to mutate more rapidly and speed up your skin's aging process.

In this bonus episode of the Biohacking Beauty podcast, Amitay, CEO of Young Goose, discusses genomic instability and how it accelerates aging at the cellular level, leading to visible signs like wrinkles and loss of elasticity.

Learn about the innovative tools that are available to combat the visible signs of aging. Master the art of aging gracefully with a thoughtful dialogue on the importance of smart sun exposure, the power of NAD precursors and skin health from the cellular level up!

What we discuss:

(1:02) An introduction to genomic instability

(2:50) Extrinsic aging and its effect on the skin

(4:24) Biohacking strategies for saving your skin from extrinsic aging and external aggressors

(6:11) Genoprotectants, what they are and how you can use them to protect your cells from damage

(7:54) The repair process, and why autophagy is so important

To learn more about Young Goose:

Use code PODCAST10 to get 10% off your first purchase, and if you’re a returning customer use the code PODCAST5 to get 5% off at https://www.younggoose.com/

Instagram: @young_goose_skincare

Resources:

Spermidine research: https://www.longevitybioresearch.org/

Spermidine in health and disease: https://www.science.org/doi/10.1126/science.aan2788

  continue reading

122 episódios

Artwork
iconCompartilhar
 
Manage episode 413333555 series 2868748
Conteúdo fornecido por Young Goose. Todo o conteúdo do podcast, incluindo episódios, gráficos e descrições de podcast, é carregado e fornecido diretamente por Young Goose ou por seu parceiro de plataforma de podcast. Se você acredita que alguém está usando seu trabalho protegido por direitos autorais sem sua permissão, siga o processo descrito aqui https://pt.player.fm/legal.

Did you know that sun exposure can not only cause burn, but also damage your DNA? Genomic instability is like rust that builds up and damages the core functions of your body's DNA. External aggressors, like the sun, can build up genomic instability causing your DNA to mutate more rapidly and speed up your skin's aging process.

In this bonus episode of the Biohacking Beauty podcast, Amitay, CEO of Young Goose, discusses genomic instability and how it accelerates aging at the cellular level, leading to visible signs like wrinkles and loss of elasticity.

Learn about the innovative tools that are available to combat the visible signs of aging. Master the art of aging gracefully with a thoughtful dialogue on the importance of smart sun exposure, the power of NAD precursors and skin health from the cellular level up!

What we discuss:

(1:02) An introduction to genomic instability

(2:50) Extrinsic aging and its effect on the skin

(4:24) Biohacking strategies for saving your skin from extrinsic aging and external aggressors

(6:11) Genoprotectants, what they are and how you can use them to protect your cells from damage

(7:54) The repair process, and why autophagy is so important

To learn more about Young Goose:

Use code PODCAST10 to get 10% off your first purchase, and if you’re a returning customer use the code PODCAST5 to get 5% off at https://www.younggoose.com/

Instagram: @young_goose_skincare

Resources:

Spermidine research: https://www.longevitybioresearch.org/

Spermidine in health and disease: https://www.science.org/doi/10.1126/science.aan2788

  continue reading

122 episódios

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