{"id":25508,"date":"2023-10-19T09:20:49","date_gmt":"2023-10-19T13:20:49","guid":{"rendered":"https:\/\/hepatochem.com\/searching-for-the-origin-of-life-with-photoredox-organocatalysis\/"},"modified":"2026-08-18T16:35:16","modified_gmt":"2026-08-18T20:35:16","slug":"searching-for-the-origin-of-life-with-a-365nm-led-with-photoredox-organocatalysis-2","status":"publish","type":"post","link":"https:\/\/hepatochem.com\/euro\/searching-for-the-origin-of-life-with-a-365nm-led-with-photoredox-organocatalysis-2\/","title":{"rendered":"Searching for the origin of life with a 365nm LED (with Photoredox Organocatalysis)"},"content":{"rendered":"<p>[et_pb_section fb_built=&#8221;1&#8243; admin_label=&#8221;section&#8221; _builder_version=&#8221;4.16&#8243; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;][et_pb_row admin_label=&#8221;row&#8221; _builder_version=&#8221;4.20.4&#8243; background_size=&#8221;initial&#8221; background_position=&#8221;top_left&#8221; background_repeat=&#8221;repeat&#8221; width=&#8221;100%&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;][et_pb_column type=&#8221;4_4&#8243; _builder_version=&#8221;4.16&#8243; custom_padding=&#8221;|||&#8221; global_colors_info=&#8221;{}&#8221; custom_padding__hover=&#8221;|||&#8221; theme_builder_area=&#8221;post_content&#8221;][et_pb_text admin_label=&#8221;Text&#8221; _builder_version=&#8221;4.20.4&#8243; background_size=&#8221;initial&#8221; background_position=&#8221;top_left&#8221; background_repeat=&#8221;repeat&#8221; custom_margin=&#8221;||0px||false|false&#8221; custom_padding=&#8221;|10px|0px|10px|false|true&#8221; hover_enabled=&#8221;0&#8243; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221; sticky_enabled=&#8221;0&#8243;]<\/p>\n<p>Without photoredox chemistry there would be no life on earth. And more importantly, without photoredox chemistry there would be no HepatoChem. So, it feels like a moral requirement that we discuss this fascinating recent work by Oliver Trapp and coworkers at the Ludwig-Maximilians University in Munich. Their <em>Accounts of Chemical Research<\/em> article <a href=\"https:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acs.accounts.3c00396\">&#8220;(Photoredox) Organocatalysis in the Emergence of Life: Discovery, Applications, and Molecular Evolution&#8221;<\/a> describes the role of photoredox organocatalysis in prebiotic chemistry (Ref 1). And yes, the title of our blog post is highly reductive. But if you clicked, it got your attention. There&#8217;s so much more here than shining an LED on things.<\/p>\n<h3>How did life on earth begin?<\/h3>\n<p>Few questions are more fundamental than the origin of life. Scientists in many fields have their own unique approach to studying this question. Astronomers can use giant telescopes to look deep into the early universe to see how planets form for insight on early conditions on earth. Archaeologists can dig holes in the ground to find fossilized microorganisms and date them back billions of years. Geneticists can sequence the entirety of the genetic code and decipher the implications for where we all started. Chemists can do what we always do, study chemical reactions, and make things.<\/p>\n<p>Oliver Trapp and coworkers are interested in questions related to chemistry on a prebiotic earth and the extremes of the universe. Asking questions like what happens in the chemistry of polycyclic hydrocarbons in exoplanet&#8217;s atmospheres (Ref 2), how CO<sub>2<\/sub> fixation could exist on iron-rich meteorites, (Ref 3) or developing a device capable of mimicking the electronic discharges that occur during volcanic lightning strikes to study prebiotic synthesis (Ref 4). In their recent Account, they weave together the story of their recent work to tell the story of how early prebiotic chemistry enabled the formation of photoredox organocatalysts that could evolve, catalyze the formation of new building blocks and catalyze key reactions for generating molecular complexity and potentially life.<\/p>\n<p>The question of where life began on a molecular level can be approached from two directions, from top down or from bottom up. &#8220;Top down&#8221; looks at the complexity of existing organisms and reduces it to its simplest viable living &#8220;protocell&#8221;. We&#8217;ll quote the authors here to describe a simple system considered to be alive:<\/p>\n<p style=\"padding-left: 40px;\">&#8220;A system&#8217;s functionalities that are considered characteristic for life are evolution, self-reproduction, metabolic activity, and compartmentalization. The challenges that therefore need to be met by a system to be considered prebiotically relevant are the formation of random sequences and the ability to copy and to replicate.&#8221; (Ref 1)<\/p>\n<p>Trapp and coworkers are working from a bottom-up approach, starting with a few select molecules that are known to exist in a prebiotic environment and working up from there to get increasingly complex molecules ultimately arriving at the &#8220;protocell&#8221;. For this work, they set out with the goal to find a plausible prebiotic organocatalyst and study its role in molecular evolution. The photoredox component may have been a happy accident.<\/p>\n<h3>The search a prebiotic photoredox organocatalyst<\/h3>\n<p>As the hypothetical prebiotic chemist on Day 0 charged with designing a chemical synthesis to create new material, what do you have to work with? To start, the Trapp group recently described the formation of simple formaldehyde and acetaldehyde compounds and higher organics from fixation of CO<sub>2<\/sub> catalyzed by iron particles derived from either meteorites or volcanic activity (Ref 3) (Figure 1A). This experiment is fascinating in and of itself using ground up iron meteorites and volcanic ash from Mt. Etna in a custom high-pressure system designed to mimic possible atmospheric conditions on early earth. We must admit, reading about a reaction screen with catalysts derived from different meteorites of different chemical composition is first for us. From the resulting aldehydes and ketones, with the presence of the readily available hydrogen cyanide and aqueous ammonia a pool of \u03b1-aminonitriles can be formed (Figure 1B). And finally, a reaction with a second carbonyl in presence of readily available hydrogen sulfide and ammonia can give imidazoline-4-thione compounds (Figure 1C) (Ref 5).<\/p>\n<p><strong>Figure 1:<\/strong> A. Formation of formaldehyde and acetaldehyde from iron meteorites or volcanic ash (Ref 3). B. Creating a pool of \u03b1-aminonitriles, C. Formation of imidazolidine-4-thione derivatives.<\/p>\n<p>[\/et_pb_text][et_pb_image src=&#8221;https:\/\/hepatochem.com\/wp-content\/uploads\/2023\/10\/Photoredox-Organocatalysis-Figure-1-scaled.jpg&#8221; alt=&#8221;prebiotic photoredox organocatalysis&#8221; title_text=&#8221;Photoredox Organocatalysis Figure 1&#8243; _builder_version=&#8221;4.20.4&#8243; _module_preset=&#8221;default&#8221; custom_margin=&#8221;0px||||false|false&#8221; custom_padding=&#8221;0px||||false|false&#8221; border_width_all=&#8221;1px&#8221; border_color_all=&#8221;#B3B3B3&#8243; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;][\/et_pb_image][et_pb_text _builder_version=&#8221;4.20.4&#8243; _module_preset=&#8221;default&#8221; custom_margin=&#8221;||0px||false|false&#8221; custom_padding=&#8221;||0px||false|false&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;]<\/p>\n<p>With this reaction scheme, the authors set out to synthesize a library of 16 imidazolidine-thione compounds from aldehydes and ketones with readily available small alkyl groups (methyl, ethyl, isopropyl) at the R positions in Figure 1C. During this study, the authors observed several interesting details with implications for further molecular complexity. First, one of the library compounds, 2-ethyl, 4-methyl-imidazolidine-4-thione afforded enantiomerically pure crystals from a racemic mixture, an interesting phenomenon that could lead to the emergence of chirality in an achiral system. Second, scrambling was observed between the \u03b1-aminonitriles and aldehydes further increasing product complexity. In addition, a significant amount of work was performed looking at mechanistic implications, reactions on pools of mixtures and further study of the products.<\/p>\n<h3>Prebiotic Photoredox Catalysis<\/h3>\n<p>With their library of catalysts on hand, the authors looked to the work of Nobel prize winning organocatalysis and photoredox experts from the David MacMillian group for the \u03b1-alkylation of aldehydes (Ref 6). This reaction was chosen in part due to the intriguing potential of the catalyst to modify its own potential building blocks, which could present the possibility for molecular evolution. The original reaction in the MacMillian work called for a ruthenium catalyst, lutidine and degassed solvents. After some reaction development to modify the MacMillian reaction to remove their photocatalyst and solely use the imidazolidine-thione catalysts with prebiotically available reagents in air, the authors screened their catalyst library on propanal and 2-bromoacetonitrile with a 365 nm LED (The LED in the title, from the beginning of the blog post!) to simulate the UV-A radiation of the sun. (Figure 2) If the presence of 2-bromoacetonitrile looks funny to you, don&#8217;t fret, the authors have you covered. This is apparently formed as a known reaction of interstellar bromine and acetonitrile and is fair game for this work. Product was observed for all catalysts screened with conversions as high as 78% and 65% <em>ee<\/em>. The resulting nitrile compounds can be hydrolyzed and\/or the aldehydes further oxidized diversifying the product pool and generate new catalysts (Figure 3).<\/p>\n<p><strong>Figure 2:<\/strong> Imidazolidine-thione photoredox organocatalytic alkylation of aldehydes.<\/p>\n<p>[\/et_pb_text][et_pb_image src=&#8221;https:\/\/hepatochem.com\/wp-content\/uploads\/2023\/10\/Photoredox-Organocatalysis-Figure-2-scaled.jpg&#8221; title_text=&#8221;Photoredox Organocatalysis Figure 2&#8243; _builder_version=&#8221;4.20.4&#8243; _module_preset=&#8221;default&#8221; border_width_all=&#8221;1px&#8221; border_color_all=&#8221;#B3B3B3&#8243; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;][\/et_pb_image][et_pb_text _builder_version=&#8221;4.20.4&#8243; _module_preset=&#8221;default&#8221; custom_margin=&#8221;||0px||false|false&#8221; custom_padding=&#8221;||0px||false|false&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;]<\/p>\n<p><strong><\/strong><\/p>\n<p><strong><\/strong><\/p>\n<p><strong>Figure 3:<\/strong> Proposal for generating new building blocks and catalysts using photoredox organocatalysis<\/p>\n<p>[\/et_pb_text][et_pb_image src=&#8221;https:\/\/hepatochem.com\/wp-content\/uploads\/2023\/10\/Photoredox-Organocatalysis-Figure-3-scaled.jpg&#8221; title_text=&#8221;Photoredox Organocatalysis Figure 3&#8243; _builder_version=&#8221;4.20.4&#8243; _module_preset=&#8221;default&#8221; border_width_all=&#8221;1px&#8221; border_color_all=&#8221;#B3B3B3&#8243; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;][\/et_pb_image][et_pb_text _builder_version=&#8221;4.20.4&#8243; _module_preset=&#8221;default&#8221; hover_enabled=&#8221;0&#8243; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221; sticky_enabled=&#8221;0&#8243;]<\/p>\n<p>Want to see increasingly complex thione 2nd and 3rd generation catalysts from feasibility derived feedstocks? Well, it&#8217;s here as well but we&#8217;ll spare you the details as we can&#8217;t do the full work justice in this short summary. There&#8217;s also an extensive study of the active photosensitizer species in each of these reactions and implications on inducing further molecular complexity. Want to see these increasingly complex thione catalysts catalyze the phosphorylation of nucleosides, a significantly relevant precursor to larger biomolecules, it&#8217;s all here in extreme detail, under a wide range of possible prebiotic conditions.<\/p>\n<p>These are just a few examples in the Trapp group&#8217;s account that looks to place organocatalysis, with the broad range of diverse and highly selective reactions possible from a prebiotic pool of materials, as a key step between prebiotic chemistry and enzymatic catalysis. Their reactions are a key step towards the formation of complex amino acids, chiral materials and catalyst evolution leading towards life. The photochemical aspect of the organocatalysis with reactions both working in light and dark, demonstrates reaction diversity that can occur during day\/night cycles and extreme environments on early earth. All in all, just an incredibly interesting telling of the story of the group&#8217;s work.<\/p>\n<p><strong>Inspired? <a href=\"https:\/\/hepatochem.com\/euro\/photoreactors-leds-accessories\/photoreactor-leds-evoluchem\/\">Check out our new selection of LEDs!<\/a><\/strong><\/p>\n<p><strong>Send us your thoughts at <a href=\"mailto:info@hepatochem.com\">info@hepatochem.com<\/a><\/strong><\/p>\n<h3>References:<\/h3>\n<p>(1) Bechtel, M.; Ebeling, M.; Huber, L.; Trapp, O. (Photoredox) Organocatalysis in the Emergence of Life: Discovery, Applications, and Molecular Evolution. Acc. Chem. Res. 2023. 56, (20) 2801-2813. <a href=\"https:\/\/doi.org\/10.1021\/acs.accounts.3c00396\">https:\/\/doi.org\/10.1021\/acs.accounts.3c00396<\/a>.<\/p>\n<p>(2) <span>Dubey, D.; Gr\u00fcbel, F.; Arenales-Lope, R.; Molaverdikhani, K.; Ercolano, B.; Rab, C.; Trapp, O. Polycyclic Aromatic Hydrocarbons in Exoplanet<\/span> Atmospheres. I. Thermochemical Equilibrium Models. Astron. Astrophys. 2023, 53, 1\u201310. ht<a href=\"tps:\/\/doi.org\/10.1051\/0004-6361\/202346958\">tps:\/\/doi.org\/10.1051\/0004-6361\/202346958<\/a>.<\/p>\n<p>(3) Peters, S.; Semenov, D. A.; Hochleitner, R.; Trapp, O. Synthesis of Prebiotic Organics from CO<sub>2<\/sub> by Catalysis with Meteoritic and Volcanic Particles. Sci. Rep. 2023, 13 (1), 1\u201315. <a href=\"https:\/\/doi.org\/10.1038\/s41598-023-33741-8\">https:\/\/doi.org\/10.1038\/s41598-023-33741-8<\/a>.<\/p>\n<p>(4) Springsklee, C., Scheu, B., Seifert, C., Cimarelli, C., Gaudin, D., Dingwell, D. B., and Trapp, O.: Experimental volcanic lightning under conditions relevant to the early Earth: Discharges as a possible prebiotic synthesis mechanism, EGU General Assembly 2023, Vienna, Austria, 24\u201328 Apr 2023, EGU23-1742, <a href=\"https:\/\/doi.org\/10.5194\/egusphere-egu23-1742,%202023\">https:\/\/doi.org\/10.5194\/egusphere-egu23-1742, 2023<\/a>.<\/p>\n<p>(5) Closs, A. C.; Fuks, E.; Bechtel, M.; Trapp, O. Prebiotically Plausible Organocatalysts Enabling a Selective Photoredox \u03b1-Alkylation of Aldehydes on the Early Earth. Chem. &#8211; A Eur. J. 2020, 26 (47), 10702\u201310706. <a href=\"https:\/\/doi.org\/10.1002\/chem.202001514\">https:\/\/doi.org\/10.1002\/chem.202001514<\/a>.<\/p>\n<p>(6) Welin, E. R.; Warkentin, A. A.; Conrad, J. C.; MacMillan, D. W. C. Enantioselective \u03b1-alkylation of aldehydes by photoredox organo- catalysis: rapid access to pharmacophore fragments from \u03b2- cyanoaldehydes. Angew. Chem., Int. Ed. 2015, 54, 9668-9672.<\/p>\n<p>[\/et_pb_text][\/et_pb_column][\/et_pb_row][\/et_pb_section]<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Mmm&#8230; What&#8217;s in the Soup? How did life begin? Were the first catalysts, photocatalysts? Read about the recent account by Oliver Trapp and coworkers on their work at prebiotic photoredox organocatalysis.<\/p>\n","protected":false},"author":7786,"featured_media":25509,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"_et_pb_use_builder":"on","_et_pb_old_content":"We are huge fans of what could be classified as \u201ccreative photocatalysts\u201d. One of our favorite papers over the past few years was this work that we wrote about <a href=\"https:\/\/hepatochem.com\/photoredox-chemistry-organic-dyes\/\" target=\"_blank\" rel=\"noopener\">here<\/a> using Hypericum flowers as an organic dye for C-C bond formation. A few dried flower petals, a base and an LED and you have a new photochemical reaction. So, if your paper can be described as using a \u201cFenton Boat photocatalyst\u201d, well you have our attention.\r\nIf you Google \u201cFenton Boats\u201d, you get links to a boat shop in Fenton, Michigan, but we\u2019ll argue that soon you will get this recent paper in Angewandte from Zhijun Chen and coworkers entitled, \u201cA Sustainable Wood-Based Iron Photocatalyst for Multiple Uses with Sunlight: Water Treatment and Radical <a href=\"http:\/\/doi.org\/10.1002\/anie.202301242\" target=\"_blank\" rel=\"noopener\">Photopolymerization<\/a>\u201d\r\nWhat\u2019s a Fenton Boat? Stick around and we\u2019ll explain. And show you a video of a photocatalyst boat.\r\n\r\nEmbed tweet:\r\n<blockquote class=\"twitter-tweet\"><p lang=\"en\" dir=\"ltr\">A Sustainable Wood-Based Iron Photocatalyst for Multiple Uses with Sunlight: Water Treatment and Radical Photopolymerization (Zhijun Chen and co-workers) <a href=\"https:\/\/t.co\/ayHH23uBwY\">https:\/\/t.co\/ayHH23uBwY<\/a> <a href=\"https:\/\/t.co\/m4a8kJ0jet\">pic.twitter.com\/m4a8kJ0jet<\/a><\/p>\u2014 Angewandte Chemie (@angew_chem) <a href=\"https:\/\/twitter.com\/angew_chem\/status\/1653374294762614786?ref_src=twsrc%5Etfw\">May 2, 2023<\/a><\/blockquote> <script async src=\"https:\/\/platform.twitter.com\/widgets.js\" charset=\"utf-8\"><\/script>\r\n\r\nWhile we had a little fun with that lead up that may make it seem that we are making light of this work, we\u2019re not. This is truly impressive. The authors made a sustainable, useful photocatalyst out of three of the cheapest things available, wood, iron and sunlight. There are many big picture problems that can be aided with photocatalysis. But there are certain problems where the task is so vast like water treatment that the solution needs to be less than cheap to have any chance of making a realistic improvement. Few things are cheaper than wood, iron and sunlight.\r\nA sustainable catalyst should be recyclable and derived from sustainable materials. Iron oxides are well known materials for heterogenous photocatalysis, although to be successful often need to be modified with photosensitizers or frameworks derived from fossil fuels. Wood is a natural replacement. Natural wood is fluorescent and phosphorescent due to lignin, cellulose and hemicellulose. For this work, modified wood doped with iron oxide acts as a photosensitizer for photocatalytic cycles, mainly photo-Fenton reactions and photopolymerizations.\r\nThe catalyst is prepared by treating wood with BBr3 to remove the methyl groups from the lignin and creating free phenols. The D-Wood was then treated with FeCl3 followed by NaOH. This process was repeated 5 times, to give Fe3O4-D-Wood containing 19% weight percent Fe3O4 (Figure 1). This material was then extensively characterized, to an extent that we can\u2019t do justice in this short piece. An alphabet soup of techniques characterized the structure including computer tomography (CT), X-ray diffraction (XRD), FT-IR, XPS, Electrochemical impedance spectroscopy (EIS), Cyclic voltammetry (CV) and visible absorption spectroscopy. All the data support a new material capable of proton electron transfer (PET) reactions consisting of a wood chamber filled with Fe3O4 particles coordinated by free phenols. The material has red-shifted absorbance observed after treating the D-Wood with iron confirming ligand to metal interactions. Fluorescence (1.64 ns) and Phosphorescence decay (0.38 ms) of D-Wood were confirmed demonstrating singlet and triplet states, while both were both suppressed upon addition iron, suggesting the new catalyst has non-emissive excited states. Similar characterization of Fe3O4-Wood (no demethylation) demonstrates the importance of the free phenols to catalytic activity.\r\nFigure 1: Fe3O4-D-Wood photocatalyst\r\n\r\n\u00a0\r\n\r\nThe authors next set up an experiment to test their new catalyst for the Photo-Fenton degradation of rhodamine B (RhB) with H2O2. In the dark, Fe3O4, Fe3O4-Wood, a mixture of separate iron and D-wood powders as a control and Fe3O4-D-Wood powder showed slow degradation (0.002-0.007 min-1). Turn on the artificial sunlight source and Fe3O4-D-Wood increases to 0.13 min-1 with 99% degradation of rhodamine by UV\/Vis spectra while no increased rate was observed for the other species. Controls confirm that reaction is proceeding via the wood catalyst and not iron leaching into solution. Further experiments varying pH, testing stability of the catalyst and recycling the catalyst were all performed with a simulated pollution sample for the degradation of 8 common pollutants. After 40 minutes of irradiation, 51% of organic contaminants were removed.\r\nAs one does when making photocatalysts, the authors also tested materials made of different sources of natural wood including Beech wood, Pine wood, and Red Walnut with small variations in efficacy. Why did we feel the need to add this detail? Because for some reason the idea that different species of trees have different photochemical properties based on the structure of their lignin is fascinating to us simple chemists.\r\nSo, we promised you a Fenton Boat? Why a boat? Because small powder chunks of the wood catalyst sink to the bottom of a polluted body of water, limiting interaction with sunlight while a boat floats. The wooden boat was treated with BBr3\/Fe conditions to generate a Fenton Boat that floats. The Fenton Boat absorbs polluted water via capillary action into the wood and concentrates in the pores and degrades via the Fenton reaction initiated by the photocatalyst. In a test experiment using artificial sunlight nearly 100% of RhB degradation was observed and in polluted water organic contaminants decreased by ~66%. The boat can be reused and more importantly recovered and moved by magnets. Just an incredible idea. There is far more work left to discuss including their experiments looking at radical traps, the kinetics, and discussion of mechanism, but we know everyone just wants to see the boat. For the purposes of scale, we\u2019ll note that the boat fits inside a 1 L beaker. To clean up a larger body of water, we\u2019re going to need a bigger boat.\r\n\r\nFor a video of the boat in action click through here.","_et_gb_content_width":"","_jetpack_newsletter_access":"","_jetpack_dont_email_post_to_subs":false,"_jetpack_newsletter_tier_id":0,"_jetpack_memberships_contains_paywalled_content":false,"_jetpack_feature_clip_id":0,"_jetpack_memberships_contains_paid_content":false,"footnotes":"","jetpack_post_was_ever_published":false},"categories":[677,675,678,672],"tags":[],"class_list":["post-25508","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-educational","category-feature-2","category-photoredox","category-scientific-literature"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.3 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Searching for the origin of life with a 365nm LED (with photoredox organocatalysis)<\/title>\n<meta name=\"description\" content=\"Prebiotic photoredox organocatalysis: What&#039;s in the soup? How did life begin? Were the first catalysts, photocatalysts?... 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