Tag Archives: DNA

Can naturalism account for the origin of the 20 amino acids in living systems?

The origin of life

There are two problems related to the origin of the first living cell, on atheism:

  1. The problem of getting the building blocks needed to create life – i.e. the amino acids
  2. The problem of creating the functional sequences of amino acids and proteins that can support the minimal operations of a simple living cell

Normally, I concede the first problem and grant the atheist all the building blocks he needs. This is because step 2 is impossible. There is no way, on atheism, to form the sequences of amino acids that will fold up into proteins, and then to form the sequences of proteins that can be used to form everything else in the cell, including the DNA itself. But that’s tomorrow’s topic.

Today, let’s take a look at the problems with step 1.

The problem of getting the building blocks of life

Now you may have heard that some scientists managed to spark some gasses to generate most of the 20 amino acids found in living systems. These experiments are called the “Miller-Urey” experiments.

The IDEA center has a nice summary of origin-of-life research that explains a few of the main problems with step 1.

Miler and Urey used the wrong gasses:

Miller’s experiment requires a reducing methane and ammonia atmosphere,11, 12 however geochemical evidence says the atmosphere was hydrogen, water, and carbon dioxide (non-reducing).15, 16 The only amino acid produced in a such an atmosphere is glycine (and only when the hydrogen content is unreasonably high), and could not form the necessary building blocks of life.11

Miller and Urey didn’t account for UV of molecular instability:

Not only would UV radiation destroy any molecules that were made, but their own short lifespans would also greatly limit their numbers. For example, at 100ºC (boiling point of water), the half lives of the nucleic acids Adenine and Guanine are 1 year, uracil is 12 years, and cytozine is 19 days20 (nucleic acids and other important proteins such as chlorophyll and hemoglobin have never been synthesized in origin-of-life type experiments19).

Miller and Urey didn’t account for molecular oxygen:

We all have know ozone in the upper atmosphere protects life from harmful UV radiation. However, ozone is composed of oxygen which is the very gas that Stanley Miller-type experiments avoided, for it prevents the synthesis of organic molecules like the ones obtained from the experiments! Pre-biotic synthesis is in a “damned if you do, damned if you don’t” scenario. The chemistry does not work if there is oxygen because the atmosphere would be non-reducing, but if there is no UV-light-blocking oxygen (i.e. ozone – O3) in the atmosphere, the amino acids would be quickly destroyed by extremely high amounts of UV light (which would have been 100 times stronger than today on the early earth).20, 21, 22 This radiation could destroy methane within a few tens of years,23 and atmospheric ammonia within 30,000 years.15

And there were three other problems too:

At best the processes would likely create a dilute “thin soup,”24 destroyed by meteorite impacts every 10 million years.20, 25 This severely limits the time available to create pre-biotic chemicals and allow for the OOL.

Chemically speaking, life uses only “left-handed” (“L”) amino acids and “right-handed” (“R)” genetic molecules. This is called “chirality,” and any account of the origin of life must somehow explain the origin of chirality. Nearly all chemical reactions produce “racemic” mixtures–mixtures with products that are 50% L and 50% R.

Two more problems are not mentioned in the article. A non-peptide bond anywhere in the chain will ruin the chain. You need around 200 amino acids to make a protein. If any of the bonds is not a peptide bond, the chain will not work in a living system. Additionally, the article does not mention the need for the experimenter to intervene in order to prevent interfering cross-reactions that would prevent the amino acids from forming.

Usually when you hear the origin of life debated, they sort of skirt about the problem of where the amino acids come from, but there is no reason not to make that an issue. The naturalist has to explain how the first living cell could come about naturalistically.

Further study

One of my favorite resources on the origin of life is this interview from the University of California with former atheist and origin of life researcher Dean Kenyon. Kenyon, a professor of Biology at San Francisco State University, wrote the textbook on “chemical evolution”, which is the view that chemicals can arrange themselves in order to create the first living cell, without intervention.

This interview from the University of California with another origin of life researcher, Charles Thaxton, is also one of my favorites.

You’ll need Quicktime to see the videos, or buy the videos from ARN. (Kenyon, Thaxton) I have both of them – they rock!

Theologian R.C. Sproul interviews Stephen C. Meyer

Five clips featuring one my of all round favorite Christian scholars – in the top 3 for sure.

Clip 1 of 5:

Clip 2 of 5:

Clip 3 of 5:

Clip 4 of 5:

Clip 5 of 5:

Dr. Meyer’s Ph.D is in the philosophy of science, obtained from Cambridge University.

Related posts

Book review of “The Cell’s Design” by Fazale Rana

J.W. Wartick reviews “The Cell’s Design” by biochemist Fazale Rana.

Excerpt:

The first line of evidence comes from the machines in the cell. Again, Rana’s approach is analogical, rather than negative. The machine-like nature of the flagellum, along with other motor-like cellular functions presents an argument: “Organisms display design. Therefore, organisms are the product of a creator” (86).

The case doesn’t rest merely upon molecular machines. Rather, that is but one of the many lines of evidence. Rana draws out the implications of several “chicken-and-egg” paradoxes. These include the “mutual interdependence of DNA and proteins” (99), the origin of proteins themselves (100ff), and more (105ff). These systems present a kind of “irreducible complexity in which the system depends on the system to exist” (108).

Other elements of design are present in the cell as well. Aquaporins intricate and detailed workings illustrate the design that is present in the system (111ff). Other detailed, intricate designs (such as collagen, mRNA, and the breakdown of proteins) hint at the need for a designer. But the reasoning is not only supported by the details, it is also bolstered by the structural composition of the cell (126ff). The analogy of cells to machines is strengthened further by the quality control systems within the cell (198ff). Again, the reasoning is analogical–these things are designed, therefore they need a designer.

“Information can’t be separated from the activity of an intelligent agent” (142). The numerous examples of information in the cell lead to the inference of an agent. But it is not only the information’s presence that hints at a designer. Here Rana’s case really builds on and develops the work of other ID theorists. The information alone could be enough to infer an agent, but one must also account for the fact that cellular information follows rules like syntax, semantics, and pragmatics (144ff). It is not merely information, it is the use of that information and the rules governing that use that strengthen the case for an agent behind the information.

It never hurts to know a lot about cosmology and biochemistry, those seem to be the best areas for offensive science apologetics.

I have this book and a later book by Rana called “Creating Life in the Lab” sitting on my ironing board (which is where I put all my to-read books) . Maybe it’s time for me to start reading those and posting book reviews.