The team that investigated NF-κB in the hypothalamus has since been hard at work, seeking a better understanding as to why this part of the brain is important in the way in which metabolic processes determine individual variations in aging and longevity. In a recently published paper [2], the team now points to one particular small population of stem cells in the hypothalamus that diminishes with age; losing these cells more rapidly appears to speed processes of aging throughout the body. The researchers believe that signals generated by these cells are the mechanism of action, and a closer investigation of these signals is the next step in this line of research. It has to be said that this sounds quite similar to the situation for Parkinson's disease, at least at the high level, in which one small but critical population of cells in the brain is diminished at a different pace in different individuals, and where autophagy - and disruption of autophagy in aging - might be important in determining the rate of loss. It also clearly parallels what is known of the age-related decline of stem cell populations in all tissues. We become damaged, and stem cell loss and inactivity is a downstream consequence of that damage.
Either way, this might make an interesting target for cell therapy: certainly, replacement of stem cell populations is on the rejuvenation research checklist. Whether it is a priority in this case rather depends on the size of the effect, however, which in this study looks like a ~10% gain in life expectancy resulting from a single cell therapy treatment carried out in middle-aged mice. Unfortunately, significant changes in longevity in mice on the basis of altered metabolism so far do not translate to significant changes in longevity in humans, at least in the few areas where the data exists for comparison. The life spans of short-lived mammals are far more plastic in response to circumstances and interventions than those of long-lived mammals. In the case of stem cell replacement as a way to reverse declines, however, it is hard to say how the comparisons will turn out - the data just isn't there yet. It is the fond hope of many in our community that approaches based on repairing loss and damage, very different from approaches based on altering metabolism to modestly slow damage accumulation or resist the consequences of damage, will turn out to have similarly scaled effects on life span in mice and humans. Maybe so, maybe not. As I said, the data isn't there. In order to find out, rejuvenation therapies based on repair must be rigorously tested in humans, and that hasn't yet happened in any useful way, even in the stem cell field.