app company
autophagy
autophagy-dependent stem-cell quiescence
Autophagy can preserve a low metabolic state in hematopoietic stem cells by clearing active mitochondria. In mice, core autophagy-gene loss impaired regeneration, while roughly one-third of old stem cells retained high autophagy and strong transplantation-based function. The study did not test a drug that converts low-autophagy cells into this state. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/28241143/
big industrial R&D
broad platform
cell communication
blood factors & parabiosis work goes here
clocks
includes epigenetic clocks, but also other types
cytosolic DNA sensing
Mechanism category for inflammatory responses to misplaced DNA, including mitochondrial DNA in aged microglia. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/37532932/
ECM
AGE crosslinks go here
ECM mechanotransduction
Editorial subcategory within extracellular-matrix biology. Separates force-dependent signaling and remodeling from chemical AGE-crosslink cleavage; the cited causal aging evidence is in nematodes. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/38177158/
endosomal microautophagy
Selective delivery of soluble cytosolic proteins into late endosomes, distinct from macroautophagy and lysosomal chaperone-mediated autophagy. The founding cell and organelle experiments established the pathway rather than an aging intervention. Sources verified 2026-09-28: https://pmc.ncbi.nlm.nih.gov/articles/PMC3025279/
epigenetic
aka 'reprogramming'
extracellular vesicles
Editorial subcategory for vesicle-mediated signaling and experimental regenerative approaches. The cited young-cell vesicle study concerns mice, not established clinical rejuvenation. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/36260670/
genomic
retrotransposons goes here, but should they be moved to splicing?
immune rejuvenation
Editorial grouping for interventions targeting age-related immune dysfunction. The cited antibody-based stem-cell intervention was tested in mice. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/38538791/
inflammation
intracell junk
lipofuscin clearance goes here
klotho
local IGF1 signaling in the marrow niche
Declining local marrow IGF1 contributed to middle-aged mouse hematopoietic stem-cell dysfunction. Ex-vivo IGF1 exposure improved molecular features and lineage output after transplantation. This tissue-specific result illustrates why reduced systemic growth signaling and preserved local stem-cell support can have different effects; it does not establish systemic IGF1 treatment for aging. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/33848471/
lysosomal function
Editorial subcategory for lysosomal degradation and accumulated intracellular material. Chaperone-mediated autophagy is mechanistically distinct from macroautophagy. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/18690243/
metabolism
microbiome
where should non-GI junction gaps go, eg BBB disruption?
mitochondria
mitochondria-derived vesicle clearance
Vesicles carry selected mitochondrial cargo to lysosomes through a route that can operate without whole-organelle mitophagy. Initial evidence came from cultured-cell trafficking experiments, not organismal lifespan studies. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/22226745/
mitochondrial unfolded-protein response
Editorial subcategory for adaptive mitochondrial protein-quality signaling, distinct from selective mitochondrial removal. Pathway activation alone is not proof of human longevity benefit. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/23698443/
mitophagy
Editorial subcategory connecting mitochondria and autophagy. Includes selective removal of damaged mitochondria; distinct from a claim that every mitophagy inducer extends human lifespan. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/27400265/
NLRP3 inflammasome signaling
Innate immune sensing pathway linked to age-associated sterile inflammation. Lifelong Nlrp3 deletion reduced inflammatory and degenerative phenotypes in aged mice, with IL-1-dependent contributions to cognitive and motor outcomes. The experiment did not test a drug started late in life. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/24093676/
Overall notes:
pet longevity
Cross-cutting application category rather than a formal hallmark. Includes longitudinal aging studies, veterinary interventions, and age-related diagnostics in companion animals. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/35110758/
physiological resilience and robustness
Editorial cross-cutting category, not an additional formal hallmark. Covers the distinction between resisting health deficits and recovering from them, using repeated functional measurements. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/36409200/
proteostasis
retrotransposon control
Editorial mechanism category connecting repetitive-element activity and inflammatory signaling. The cited intervention evidence is in senescent cells and aged mice. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/30728521/
senescence
splicing
stem cells
stem-cell polarity
Spatial organization of cellular components and chromatin marks can affect stem-cell function. In aged mouse hematopoietic stem cells, reducing excess Cdc42 activity restored polarity and improved transplantation-based function. Evidence for this category does not imply that systemic Cdc42 inhibition is a validated therapy. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/22560076/
stress
hormesis goes here
telomeres
transcriptional fidelity and elongation
Mechanism category for age-related changes in transcription kinetics and RNA processing, including experimental manipulation of polymerase speed. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/37046086/
umbrella company
| Select up to four records | |||||
|---|---|---|---|---|---|
| access company | approved, unapproved | — | — | — | |
| app company | — | — | — | — | |
| autophagy | — | — | autophagy (disabled macroautophagy) | — | |
| autophagy-dependent stem-cell quiescence Autophagy can preserve a low metabolic state in hematopoietic stem cells by clearing active mitochondria. In mice, core autophagy-gene loss impaired regeneration, while roughly one-third of old stem cells retained high autophagy and strong transplantation-based function. The study did not test a drug that converts low-autophagy cells into this state. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/28241143/ | Mitochondrial clearance; metabolic restraint; hematopoietic self-renewal | — | Disabled macroautophagy; stem cell exhaustion; mitochondrial dysfunction (editorial mapping) | — | |
| big industrial R&D | — | — | — | — | |
| broad platform | — | — | — | — | |
| cell communication blood factors & parabiosis work goes here | — | — | altered intercellular communication | — | |
| clocks includes epigenetic clocks, but also other types | — | — | — | — | |
| cytosolic DNA sensing Mechanism category for inflammatory responses to misplaced DNA, including mitochondrial DNA in aged microglia. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/37532932/ | cGAS–STING; mitochondrial DNA release; innate immune activation | — | Mitochondrial dysfunction; chronic inflammation (editorial mapping) | — | |
| ECM AGE crosslinks go here | — | extracellular crosslinks / matrix stiffening | altered mechanical properties | — | |
| ECM mechanotransduction Editorial subcategory within extracellular-matrix biology. Separates force-dependent signaling and remodeling from chemical AGE-crosslink cleavage; the cited causal aging evidence is in nematodes. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/38177158/ | Matrix mechanics; collagen turnover; tissue-force signaling | — | Altered intercellular communication (editorial mapping) | — | |
| endosomal microautophagy Selective delivery of soluble cytosolic proteins into late endosomes, distinct from macroautophagy and lysosomal chaperone-mediated autophagy. The founding cell and organelle experiments established the pathway rather than an aging intervention. Sources verified 2026-09-28: https://pmc.ncbi.nlm.nih.gov/articles/PMC3025279/ | hsc70 cargo selection; ESCRT-dependent late-endosomal uptake | — | Loss of proteostasis (editorial mapping) | — | |
| epigenetic aka 'reprogramming' | — | — | epigenetic alterations | epigenetics | |
| extracellular vesicles Editorial subcategory for vesicle-mediated signaling and experimental regenerative approaches. The cited young-cell vesicle study concerns mice, not established clinical rejuvenation. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/36260670/ | Cell-derived signals and regenerative cargo | — | altered intercellular communication | — | |
| genomic retrotransposons goes here, but should they be moved to splicing? | — | nuclear mutations / cancer | genomic instability | macromolecular damage | |
| immune rejuvenation Editorial grouping for interventions targeting age-related immune dysfunction. The cited antibody-based stem-cell intervention was tested in mice. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/38538791/ | Hematopoietic stem-cell composition and immune function | — | stem cell exhaustion; altered intercellular communication | — | |
| inflammation | — | — | (chronic) inflammation | inflammation | |
| intracell junk lipofuscin clearance goes here | — | intracellular junk | — | — | |
| klotho | — | — | — | — | |
| local IGF1 signaling in the marrow niche Declining local marrow IGF1 contributed to middle-aged mouse hematopoietic stem-cell dysfunction. Ex-vivo IGF1 exposure improved molecular features and lineage output after transplantation. This tissue-specific result illustrates why reduced systemic growth signaling and preserved local stem-cell support can have different effects; it does not establish systemic IGF1 treatment for aging. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/33848471/ | Bone-marrow growth factors; hematopoietic lineage bias; mitochondrial activity | — | Altered intercellular communication; stem cell exhaustion (editorial mapping) | — | |
| lysosomal function Editorial subcategory for lysosomal degradation and accumulated intracellular material. Chaperone-mediated autophagy is mechanistically distinct from macroautophagy. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/18690243/ | Chaperone-mediated autophagy and protein clearance | — | loss of proteostasis | — | |
| metabolism | mTOR | — | deregulated nutrient sensing | metabolism | |
| microbiome where should non-GI junction gaps go, eg BBB disruption? | — | — | microbiome disturbance / disbiosis | — | |
| mitochondria | NAD+ | mitochondrial mutations | mitochondrial dysfunction | — | |
| mitochondria-derived vesicle clearance Vesicles carry selected mitochondrial cargo to lysosomes through a route that can operate without whole-organelle mitophagy. Initial evidence came from cultured-cell trafficking experiments, not organismal lifespan studies. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/22226745/ | mitochondrial cargo sorting; oxidative-stress response; lysosomal delivery | — | Mitochondrial dysfunction; loss of proteostasis (editorial mapping) | — | |
| mitochondrial unfolded-protein response Editorial subcategory for adaptive mitochondrial protein-quality signaling, distinct from selective mitochondrial removal. Pathway activation alone is not proof of human longevity benefit. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/23698443/ | Mitonuclear protein balance; mitochondrial stress signaling | — | Mitochondrial dysfunction; loss of proteostasis (editorial mapping) | — | |
| mitophagy Editorial subcategory connecting mitochondria and autophagy. Includes selective removal of damaged mitochondria; distinct from a claim that every mitophagy inducer extends human lifespan. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/27400265/ | Selective mitochondrial quality control | — | mitochondrial dysfunction; disabled macroautophagy | — | |
| NLRP3 inflammasome signaling Innate immune sensing pathway linked to age-associated sterile inflammation. Lifelong Nlrp3 deletion reduced inflammatory and degenerative phenotypes in aged mice, with IL-1-dependent contributions to cognitive and motor outcomes. The experiment did not test a drug started late in life. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/24093676/ | NLRP3-ASC-caspase-1 activation; sterile inflammation; IL-1 signaling | — | Chronic inflammation; altered intercellular communication (editorial mapping) | — | |
| Overall notes: | The primary goal here is to be able to group together similar efforts within the aging/longevity focused subset of the biotech field, which is a different goal than any of the other 3 frameworks started with. | — | — | — | |
| pet longevity Cross-cutting application category rather than a formal hallmark. Includes longitudinal aging studies, veterinary interventions, and age-related diagnostics in companion animals. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/35110758/ | Companion-animal geroscience | — | — | — | |
| physiological resilience and robustness Editorial cross-cutting category, not an additional formal hallmark. Covers the distinction between resisting health deficits and recovering from them, using repeated functional measurements. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/36409200/ | Resistance to damage; recovery; longitudinal deficit transitions | — | — | — | |
| proteostasis | — | extracellular junk | loss of proteostasis | proteostasis | |
| retrotransposon control Editorial mechanism category connecting repetitive-element activity and inflammatory signaling. The cited intervention evidence is in senescent cells and aged mice. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/30728521/ | LINE-1 repression; reverse transcription; innate immune activation | — | Genomic instability; chronic inflammation (editorial mapping) | — | |
| senescence | — | cell senescence | cellular senescence | — | |
| splicing | — | — | splicing dysregulation | — | |
| stem cells | allogeneic, autologous, secretions | cell loss & atrophy | stem cell exhaustion | stem cell regeration | |
| stem-cell polarity Spatial organization of cellular components and chromatin marks can affect stem-cell function. In aged mouse hematopoietic stem cells, reducing excess Cdc42 activity restored polarity and improved transplantation-based function. Evidence for this category does not imply that systemic Cdc42 inhibition is a validated therapy. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/22560076/ | Cdc42 activity; asymmetric cellular organization; H4K16 acetylation | — | Stem cell exhaustion; epigenetic alterations (editorial mapping) | — | |
| stress hormesis goes here | — | — | — | stress | |
| telomeres | — | — | telomere attrition | — | |
| transcriptional fidelity and elongation Mechanism category for age-related changes in transcription kinetics and RNA processing, including experimental manipulation of polymerase speed. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/37046086/ | RNA polymerase II speed; nucleosome maintenance; cotranscriptional RNA processing | — | Epigenetic alterations (editorial mapping) | — | |
| umbrella company | — | — | — | — |