The study began with amino acids, the molecular building blocks of proteins. Amino acids can form naturally in the absence of life through collisions among simpler molecules, but because such collisions are rare in space, the likelihood of complex amino acids assembling in this way is limited. Therefore, in nonliving chemistry, simpler amino acids tend to dominate because they form more easily, while larger and more complex ones become increasingly rare.
Life behaves differently. Living systems survive when they produce the molecules that enable their function, even if those molecules are energetically “expensive” to make. Instead of a random assortment shaped mainly by chance, biology therefore leaves behind patterns that are not necessarily dominated by simpler building blocks.
As a result, samples of living matter are consistently more diverse in terms of molecular composition than their nonliving counterparts. This distinction holds true not only for amino acids but also for fatty acids, indicating that the diversity signal reflects a fundamental biosynthetic signature.
“Life will produce the building blocks it needs in order to function,” sums up Halevy.
The method was created in the context of a proposed Israeli mission concept called Eureka. Kaspi, Halevy, Yoffe and collaborators are developing this concept together with Israel’s aerospace industry. The goal is to send a small spacecraft to one or two of the Solar System’s icy moons – likely Europa, and perhaps also Enceladus – whose frozen crusts conceal vast subsurface oceans. Taking part in planning the mission is the space division of Israel Aerospace Industries (IAI), which is leading the spacecraft’s design.