Pri­ons in bac­te­ria

Reprinted from Vi­rol­ogy blog by kind per­mis­sion from the au­thor. This topic was also re­cently dis­cussed on the pod­cast This Week in Mi­cro­bi­ol­ogy, episode 144 .

by Vin­cent Racaniello

Bac­te­ria do not de­velop trans­mis­si­ble spongi­form en­ce­pha­lo­pathies, but they have been found to pro­duce pri­ons – pro­teins that can adopt al­ter­na­tive con­for­ma­tions with dif­fer­ent func­tions.

Prion dis­eases, a fre­quent topic on this blog, are caused by mis­fold­ing of a nor­mal cel­lu­lar prion pro­tein. Prion pro­teins are found in other or­gan­isms, where the al­ter­na­tive con­for­ma­tion con­fers a new, non-path­o­genic func­tion to the pro­tein. At least 12 dif­fer­ent prion pro­teins have been found in yeast, and they con­fer the abi­lity to grow more ef­fi­ciently un­der cer­tain con­di­tions. Now pri­ons have been dis­cov­ered in bac­te­ria.

Fig­ure 1. prion con­for­ma­tion. Source

A search of 60,000 bac­te­r­ial genomes for pro­teins with prion-form­ing do­mains re­vealed one in the tran­scrip­tion ter­mi­na­tion pro­tein Rho from Clostrid­ium bot­u­linum (Cb-Rho). When pro­duced in E. coli, the pro­tein forms amy­loid – pro­tein ag­gre­gates in the form of fib­rils – that are char­ac­ter­is­tic of pri­ons. A 68 amino acid stretch of Cb-Rho can func­tion­ally sub­sti­tute for the prion-form­ing do­main of a yeast prion-form­ing pro­tein. This pro­tein, called Sup35, can read stop codons in the prion state, and this phe­no­type was re­ca­pit­u­lated in yeast by the Clostrid­ium prion.

The Cb-Rho prion can con­vert be­tween prion and non-prion con­for­ma­tions in E. coli. This prop­erty was demon­strated by plac­ing a Rho-de­pen­dent ter­mi­na­tor be­tween a pro­moter and the lacZ gene, the prod­uct of which pro­duces a blue color. In the prion state, Rho has de­creased ac­tiv­ity, lead­ing to blue cells. In the non-prion state, nor­mal ter­mination leads to pale blue colonies. A mix­ture of blue and pale blue colonies was ob­served, show­ing that Rho ex­ists in the prion and non-prion states.

The prion con­for­ma­tion was also shown to be her­i­ta­ble. Blue co­lo­nies al­ways gave rise to blue co­lo­nies, while pale blue colonies formed pale blue colonies. The blue colony color lasted for over 120 gen­er­a­tions.

The find­ing of a prion in bac­te­ria in­di­cates that this form of pro­tein-based hered­ity arose be­fore eu­kary­otes emerged on Earth. Sim­i­lar prion-like pro­tein do­mains have also been found in other phyla of bac­te­ria, sug­gest­ing the ex­is­tence of an im­por­tant source of epi­ge­netic di­ver­sity that can al­low bac­te­r­ial growth un­der di­verse con­di­tions. Ex­actly how bac­te­r­ial pri­ons con­fer new func­tions will be ex­cit­ing to dis­cover.

Last time we learned that eu­kary­otes prob­a­bly didn't in­vent the nu­cleus. Now we find that pri­ons likely emerged first in bac­te­ria. Did eu­kary­otes in­vent any­thing?

 

Vincent Racaniello

Vin­cent Racaniello is pro­fes­sor of Mi­cro­bi­ol­ogy at Co­lum­bia Uni­ver­sity Med­ical Cen­ter, virus afi­cionado, host of the Vi­rol­ogy Blog, and host of the pod­casts, This Week in Vi­rol­ogy and This Week in Mi­cro­bi­ol­ogy.

 

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