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Published on: January 7, 2013
A joint explanation of infant and old age mortality
Peter Richmond1, Bertrand M Roehner2
1School of Physics, Trinity College Dublin, Dublin, Ireland.
Insights
Infant and old age deaths, though distinct, may share a common biological mechanism. Severity of anomalies explains differing death rates, with more organs potentially increasing mortality risk across lifespans.
Area of Science:
- Gerontology
- Developmental Biology
- Demography
Background:
- Infant mortality stems from specific organ malformations, while old age mortality results from widespread, gradual organ deterioration.
- Age-specific death rates differ significantly: infant rates decrease with age, whereas adult and old age rates increase exponentially (Gompertz's law).
- Existing research extensively studies aging and old age mortality but has largely overlooked infant mortality, with limited attempts to connect the two phenomena.
Purpose of the Study:
- To propose a unified explanatory framework for both infant and old age mortality.
- To investigate if a single biological mechanism can account for the divergent patterns of age-specific death rates.
- To explore the relationship between organismal complexity (number of organs) and mortality severity.
Main Methods:
- Theoretical modeling to establish a unified mechanism for mortality.
- Analysis of age-specific death rate patterns (declining vs. increasing).
- Comparative analysis across species to identify generalizable principles.
Main Results:
- The proposed mechanism explains both declining infant mortality and increasing old age mortality based on the severity of biological anomalies.
- Isolated, severe anomalies lead to infant deaths, while widespread, less severe wear-out anomalies cause old age deaths.
- The framework predicts that organisms with more organs may experience more severe mortality effects.
Conclusions:
- A single biological mechanism, differentiated by anomaly severity, can explain both infant and old age mortality patterns.
- The severity of mortality effects, in both infancy and old age, may correlate with the number of organs in an organism.
- This unified approach offers a novel perspective on understanding mortality across the lifespan and species.
Abstract:
Infant deaths and old age deaths are very different. The former are mostly due to severe congenital malformations of one or a small number of specific organs. On the contrary, old age deaths are largely the outcome of a long process of deterioration which starts in the 20s and affects almost all organs. In terms of age-specific death rates, there is also a clear distinction: the infant death rate falls off with age, whereas the adult and old age death rate increases exponentially with age in conformity with Gompertz's law. An additional difference is that whereas aging and old age death have been extensively studied, infant death received much less attention. To our knowledge, the two effects have never been inter-connected. Clearly, it would be satisfactory to explain the two phenomena as being two variants within the same explanatory framework. In other words, a mechanism providing a combined explanation for the two forms of mortality would be welcome. This is the purpose of the present paper. We show here that the same biological effects can account for the two cases provided there is a difference in their severity: death triggered by isolated lethal anomalies in one case and widespread wear-out anomalies in the second. We show that quite generally this mechanism leads indeed, respectively, to a declining and an upgoing death rate. Moreover, this theoretical framework leads to the conjecture that the severity of the death effects, whether in infancy or old age, is higher for organisms which comprised a larger number of organs. Finally, let us observe that the main focus of the paper is the drastic difference of the age-specific death rates (i.e., decreasing versus increasing) because this difference is found in many species, whereas the question of the best fit (e.g., Gompertz versus Weibull) is rather specific to human mortality.
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