Teach­ing Pseu­do­mo­nas to En­do­cy­tose

I of­fer this as an echo to Elio's post from last Oc­to­ber, Teach­ing E. coli to En­do­cy­tose. There Elio re­ported the re­cent ed­u­ca­tion of  E. coli by the het­erol­o­gous ex­pres­sion of a mam­malian gene. I tell of a bac­terium in­structed by a phage.

by Merry Youle

Ap­par­ently Pseudomonas phage φ6 missed that clas­sic 1952 pa­per by Her­shey and Chase. You know, the one where they ra­di­o­la­beled ei­ther T2 or T4 phages with 32P and 35S, mixed them with sus­cep­ti­ble E. coli as hosts, let the phages ad­sorb and be­gin the in­fec­tion, then whirred them in a War­ing blender. The 32P‑labeled DNA en­tered the host cells, while the 35S‑labeled cap­sid pro­teins re­mained out­side. This be­came the par­a­digm for phage in­fec­tion, slightly tem­pered later to ac­com­mo­date the en­try, along with the genome, of var­i­ous 'in­ter­nal pro­teins' that had been pack­aged in­side the cap­sid. How­ever, for eu­kary­otic viruses that have dou­ble-stranded RNA (dsRNA) genomes, it's a whole dif­fer­ent story. Lit­er­ally. The whole cap­sid en­ters the cell. I dis­cussed some of the ben­e­fits of this strat­egy in my post about the 'vi­ral tur­tles' that in­fect yeast. Most dsRNA viruses rely on the host to take up the virion by en­do­cy­to­sis. Since Bac­te­ria, it is widely be­lieved, don't en­do­cy­tose, this would seem to pre­clude phage viri­ons from play­ing this game. But ap­par­ently phage φ6 missed this in­junc­tion, too.

Fig­ure 1. EM of φ6 viri­ons (uranyl ac­etate stain­ing). Bar = 50 nm. Source

Phage φ6: From Virion to Nu­cle­o­cap­sid

Meet φ6, a small­ish (85 nm) icosa­he­dral phage with a dsRNA genome that in­fects the plant pathogen Pseudomonas savas­tanoi pv. phase­oli­cola. It is the model phage for the fam­ily Cys­toviri­dae, a group dis­tin­guished by their mul­ti­par­tite genomes com­posed of three seg­ments of dsRNA genomes and their com­plex viri­ons that are sur­rounded by a lipid mem­brane. Since φ6 in­fects a Gram-neg­a­tive host, it needs to sur­mount three ob­sta­cles: the outer mem­brane, the labyrinth of pep­ti­do­gly­can within the periplasm, and then the cell mem­brane it­self. Dif­fer­ent com­po­nents of the φ6 virion fa­cil­i­tate each of these steps.

Fig­ure 2. Schematic draw­ing of the φ6 virion. The three ge­nomic seg­ments of dsRNA are pack­aged within an in­ner cap­sid that is sur­rounded by a outer cap­sid lat­tice. The en­tire par­ti­cle is then en­veloped by a lipid mem­brane. Source

The Cys­toviri­dae are un­usual in pos­sess­ing an outer lipid en­ve­lope; for the other phages that have lipids as­so­ci­ated with their viri­ons, the mem­branes form an in­ter­nal layer (for ex­am­ple, Tec­tivirus PRD1). Ex­ter­nal lipid mem­branes are char­ac­ter­is­tic of an­i­mal viruses that ac­quire this wrap­ping as they bud from the mem­brane of the host cell. In con­trast, the mem­brane of φ6 is added as the cap­sids as­sem­ble within the host cy­to­plasm. The lipids of φ6 are pro­vided by the host, but all of the pro­teins in its mem­brane are phage-en­coded and as­sist dur­ing in­fec­tion. One of them (P3) forms a spike that ad­sorbs to the host pilus, φ6's re­cep­tor. The phage keeps its grip as re­trac­tion of the pilus ush­ers it through the host's EPS (ex­opolysac­cha­ride) layer to the cell sur­face. Then an­other mem­brane pro­tein (P6) me­di­ates fu­sion of the phage mem­brane with the host outer mem­brane. This step neatly de­liv­ers the naked phage nu­cle­o­cap­sid (NC) into the periplasm with­out any messy leak­age of the periplas­mic con­tents. The NC of φ6 is a com­plex struc­ture, 56–58 nm in di­am­e­ter, com­posed of in­ner and outer pro­tein cap­sids with the ge­nomic dsRNA in­side.

Fig­ure 2. Schematic draw­ing of the φ6 virion. The three ge­nomic seg­ments of dsRNA are pack­aged within an in­ner cap­sid that is sur­rounded by a outer cap­sid lat­tice. The en­tire par­ti­cle is then en­veloped by a lipid mem­brane. Source

The next chal­lenge fac­ing the NC is how to pen­e­trate the jun­gle of pep­ti­do­gly­can. Easy! φ6 sim­ply di­gests a clear path to the cell mem­brane us­ing a lytic en­zyme (P5) ex­posed on the out­side of its NC. This en­zyme is es­sen­tial. If it is in­ac­ti­vated by pre­treat­ing viri­ons at high tem­per­a­ture, φ6 still en­ters the periplasm but it gets no far­ther. In the lab, viri­ons can be con­verted into NCs by re­mov­ing the lipid en­ve­lope us­ing Tri­ton X‑114, a non-de­na­tur­ing de­ter­gent. These NCs can't in­fect nor­mal P. sy­ringae cells be­cause they can't get past the outer mem­brane. Of­fer to them in­stead en­er­get­i­cally ac­tive spher­o­plasts that lack an in­tact outer mem­brane, and they launch pro­duc­tive in­fec­tions.

'En­do­cy­to­sis'

Af­ter tun­nel­ing through the pep­ti­do­gly­can, the NC comes face to face with the cell mem­brane. En­try of a par­ti­cle of that size into a cell ('in­ter­nal­iza­tion') sug­gests en­do­cy­to­sis, but bac­te­ria don't 'know' how to en­do­cy­tose! How­ever, with φ6 in con­trol, P. sy­ringae man­ages. Key to this is the phage's outer cap­sid that forms the sur­face of the NC. This layer is a sim­ple lat­tice com­posed of only one pro­tein (P8). When re­searchers re­moved it from the NCs, the mod­i­fied NCs could no longer in­fect spher­o­plasts. It is thought that in­ter­ac­tion of P8 with the cell mem­brane im­poses the cur­va­ture that cre­ates the en­do­cytic in­vagi­na­tion which prompts this mem­brane to pinch off and form vesi­cles. In­ter­nal­iza­tion of both an­i­mal viruses and phage NCs is an ac­tive process. This en­try step re­quires a nor­mal mem­brane po­ten­tial.

Ac­tu­ally ob­serv­ing the in­ter­nal­iza­tion of φ6 via TEM has proven dif­fi­cult. Dur­ing nor­mal in­fec­tion, it hap­pens in a flash. View­ing this process calls for syn­chro­nously in­fect­ing host cells. How­ever, the NCs don't all ar­rive at the cell mem­brane at the same time, mainly be­cause the time re­quired for pilus re­trac­tion is quite vari­able. A cou­ple of tricks have been used to get around this prob­lem. One is to work with spher­o­plasts and NCs, thereby elim­i­nat­ing the ear­lier asyn­chro­nous steps. An­other is to treat host cells with var­i­ous en­ergy de­plet­ing agents (e.g., sodium azide or the protonophore CCCP) prior to in­fec­tion. When re­searchers added φ6 viri­ons to en­ergy-ar­rested cells, the viri­ons fused with the outer mem­brane and pen­e­trated the pep­ti­do­gly­can as usual, then ac­cu­mu­lated at the cell mem­brane. Some were seen to lie within mem­brane in­vagi­na­tions, but still out­side the cell mem­brane. When the in­hibitory drugs were re­moved, NC-con­tain­ing vesi­cles pinched off from the in­vagi­na­tion and in­fec­tion pro­ceeded in the re­cov­ered cells.

The Last Hur­dle

The NC, trapped in­side a vesi­cle, hasn't yet en­tered the cy­to­plasm. How φ6 es­capes the vesi­cle is not known, but likely in­volves vesi­cle mem­brane dis­rup­tion by the same outer cap­sid pro­tein, P8. Dur­ing the process, P8 is de­graded, thus de­stroy­ing the outer cap­sid. The re­main­ing in­ner cap­sid (47 nm di­am­e­ter) en­ters the cy­to­plasm in­tact. In this re­spect φ6 be­haves like other viruses with dsRNA genomes. Be they eu­kary­otic viruses or phages, all re­tain a pro­tec­tive pro­tein cap­sid around their genome so that the dsRNA is not detected—and destroyed—by the host. The φ6 genome, still en­closed within the in­ner cap­sid, then be­gins tran­scrip­tion and repli­ca­tion.

Fig­ure 4. Elec­tron mi­cro­graphs of the ar­rested in­fec­tion of P. sy­ringae spher­o­plasts by φ6 NCs. Ar­row­head in­di­cates an NC within an in­vagi­na­tion, but still out­side the cell mem­brane. Bar = 100 nm. Source

But Is This En­do­cy­to­sis?

Per­haps you con­sider φ6's cross­ing of the cell mem­brane to be en­do­cy­to­sis, per­haps not. Ei­ther way, I see a dif­fer­ent take home les­son. To me, this tale, like Elio's about vesi­cle pro­duc­tion in E. coli, sug­gests that there is no in­trin­sic lim­i­ta­tion pre­vent­ing in­vagi­na­tion and vesi­cle for­ma­tion by bac­te­r­ial mem­branes. These mem­branes seem poised on the brink, re­quir­ing only a small step to trig­ger the process. This raises the ques­tion of why no Bac­te­ria have been ir­refutably shown to have taken that step and ex­ploited the process for their own pur­poses. I imag­ine that they sim­ply found lit­tle use for it. To be use­ful might re­quire the whole package—the com­plex in­tra­cel­lu­lar net­works of tubules and vesi­cles that char­ac­ter­ize the eu­kary­otic cell. Please post a com­ment if you have thoughts on this.

 

Ref­er­ence

Ro­mantschuk M, Olkko­nen VM, Bam­ford DH (1988). The nu­cle­o­cap­sid of bac­te­rio­phage phi 6 pen­e­trates the host cy­to­plas­mic mem­brane. The EMBO jour­nal, 7 (6), 1821−1829. PMID 3169005

 

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