The Im­muno­log­i­cal Synapse Goes Vi­ral

by Merry Youle

Here's yet an­other tale of how a cun­ning virus has con­verted one of our an­tivi­ral de­fenses into a tool for its own pur­poses. The co-opted mech­a­nism is one used by cy­to­toxic T‑cells to kill virus-in­fected cells: the im­muno­log­i­cal synapse. More on this in a mo­ment. The virus is Hu­man T‑Lymphotropic Virus Type I (HTLV‑1). The ap­pro­pri­ated tac­tic en­ables the virus to spread ef­fi­ciently to new host cells.

Struc­tural pro­teins in the HTLV‑I virion in­clude Gag (a cap­sid pro­tein) and Env (the sur­face gly­co­pro­tein re­quired for in­fec­tiv­ity). Flu­o­res­cently-la­beled an­ti­bod­ies showed that these pro­teins were not po­lar­ized in iso­lated in­fected T cells. In cell-cell con­ju­gates, the pro­teins ac­cu­mu­lated at the cell-cell junc­tion within 40 min. This par­tic­u­lar con­fo­cal im­age shows po­lar­iza­tion of HTLV‑I Gag p19 (red) to the cell-cell junc­tion. Source

When dis­cov­ered in 1977, HTLV‑1 was the first known hu­man retro­virus (HIV not be­ing iden­ti­fied un­til six years later). While not as dev­as­tat­ing as HIV, it cur­rently in­fects 10–20 mil­lion peo­ple, 2–3% of whom will de­velop adult T‑cell leukemia/lymphoma while an­other 2–3% de­velop a chronic in­flam­ma­tory con­di­tion (HAM/TSP). Like HIV, it in­fects pri­mar­ily CD4+ T cells. And like HIV, HTLV‑1 also trans­mits from one per­son to the next in blood, milk, or se­men. But just how it does this was puz­zling be­cause, un­like HIV, few free viri­ons are found in the blood and, of those, only one virion in a mil­lion is in­fec­tious. More clues: Only en­veloped HTLV‑1 viri­ons are in­fec­tious and they ac­quire their en­ve­lope from the lym­pho­cyte plasma mem­brane as they bud from their host cell. Ef­fi­cient trans­fer of the virus be­tween cells re­quires cell-cell con­tact, both in vitro and in vivo.

Mod­els of the im­muno­log­i­cal synapse and vi­ral synapse. (A) When an im­muno­log­i­cal synapse forms be­tween a cy­to­toxic T lym­pho­cyte and a tar­get cell, the mi­cro­tubule-or­ga­niz­ing cen­ter is po­lar­ized to­wards the synapse (or­ange el­lipses = cen­tri­oles). Lytic gran­ules con­tain­ing cy­to­tox­ins (red discs) are trans­ported along mi­cro­tubules (black lines) to the synap­tic cleft. The cy­to­tox­ins (red points) are re­leased into the synap­tic cleft and taken up by the tar­get cell. (B–C) Pos­si­ble modes of virus trans­mis­sion through the HTLV‑1 vi­ral synapse. (B) En­veloped HTLV‑1 par­ti­cles (pur­ple-blue discs) bud into the synap­tic cleft and are trans­mit­ted to the tar­get cell. (C) En­veloped virus par­ti­cles bud at the pe­riph­ery of the synapse and are trans­mit­ted through the ex­tra­cel­lu­lar space (ob­served in some in­fected cell lines but not in nat­u­rally-in­fected CD4+ T cells). Source

Com­bined these ob­ser­va­tions sug­gest that per­haps the viri­ons bud from one cell and im­me­di­ately en­ter their next host cell with­out ever wan­der­ing free in the liq­uid mi­lieu. What would such a strat­egy re­quire? First, an in­fected CD4+ T cell must dock with an un­in­fected CD4+ T cell, some­thing it nor­mally does not do. The ma­ture viri­ons in the in­fected cell must be trans­ported to the zone of sur­face con­tact and be re­leased there, ac­quir­ing their en­ve­lope as they exit. The now-in­fec­tious viri­ons must then en­ter their new host cell di­rectly.

A vi­ral synapse. Con­ju­gates were al­lowed to form for 40 min be­tween in­fected and un­in­fected CD4+ T cells. A cell ad­he­sion pro­tein (talin, green) ac­cu­mu­lates at the sur­face of the in­fected cell in a pat­tern that rep­re­sents the outer ring of a bulls­eye; the HTLV‑I cap­sid pro­tein (Gag, red) is lo­cal­ized at the sur­face in the cen­ter of the talin ring. Bar = 5 μm. Source

This is ex­actly what HTLV‑1 achieves by ma­nip­u­lat­ing the com­po­nents of our im­muno­log­i­cal synapse. The im­muno­log­i­cal synapse is a spe­cial­ized cel­lu­lar struc­ture used by T‑killer cells to de­stroy virus-in­fected cells and tu­mori­genic cells. When a T‑killer cell meets a sus­pect cell, it forms an im­muno­log­i­cal synapse at its own cell pe­riph­ery in the re­gion of con­tact. Pic­ture a bulls­eye on the T‑killer cell sur­face. Cell-cell ad­he­sion mol­e­cules lo­cal­ized in the outer ring are used to ad­here to the other cell. In the cen­ter is the recog­ni­tion site used by the T‑killer cell to de­ter­mine if the con­tacted cell should be de­stroyed. If the ver­dict is "guilty," the mi­cro­tubule or­ga­niz­ing cen­ter of the T‑killer cell po­lar­izes to­wards the synapse. Se­cre­tory lyso­somes move along the mi­cro­tubules to the cen­ter of the bulls­eye where their con­tents are se­creted. The nox­ious se­cre­tion con­tains both per­forin (to make holes in the tar­get cell's mem­brane) and granzymes (ser­ine pro­tease gran­ules that in­duce apop­to­sis). This door-to-door de­liv­ery is deadly.

Con­ju­gates were al­lowed to form for 40 min be­tween in­fected and un­in­fected CD4+ T cells. The mi­cro­tubule-or­ga­niz­ing cen­ter re­ori­ents to lie ad­ja­cent to the po­lar­ized HTLV‑I cap­sid pro­tein (Gag) at the cell-cell junc­tion. Tubu­lin-al­pha (green), HTLV‑I Gag p19 (red). Bar = 5 μm. Source

Turn­ing the ta­bles, HTLV‑1 uses an anal­o­gous cell-cell junc­tion called a vi­ral synapse to de­liver its prog­eny viri­ons to un­in­fected lym­pho­cytes. Lym­pho­cytes don't nor­mally form sta­ble cell-cell junc­tions with each other. How­ever, CD4+ T cells in­fected with HTLV‑1 do, at least with un­in­fected CD4+ T cells. When mixed to­gether, they form such con­tacts within 40 min­utes. By us­ing im­muno­flu­o­res­cence and flu­o­res­cent in-situ hy­bridiza­tion (FISH), re­searchers showed that both HTLV‑1 pro­teins and vi­ral RNA genomes ac­cu­mu­late at the sur­face in the re­gion of cell-cell con­tact and then trans­fer into the un­in­fected cell. The mi­cro­tubule-or­ga­niz­ing cen­terof the in­fected cell po­lar­izes to­ward the synapse, as was seen at the im­muno­log­i­cal synapse, only here the virus is or­ches­trat­ing the process and the trans­ported cargo is vi­ral. The ad­di­tion of 33 nM noco­da­zole, which blocks mi­cro­tubule poly­mer­iza­tion, also pre­vents trans­fer of the vi­ral pro­teins to the un­in­fected cell.

What ex­actly takes place at a vi­ral synapse? One group of re­searchers used elec­tron to­mog­ra­phy to ex­plore the con­tact zone formed where the sur­face of an in­fected cell in­ter­acts with an un­in­fected cell. Within that re­gion they dis­tin­guished a synap­tic cleft bounded by a re­gion of closely op­posed cell mem­branes. En­veloped HTLV‑1 viri­ons were seen bud­ding from the in­fected cell into the synap­tic cleft. Typ­i­cally these viri­ons were not free, but ap­peared to be in con­tact with the in­fected cell, the tar­get cell, or both, sug­gest­ing that of­ten the ex­it­ing viri­ons make con­tact with the new host cell be­fore let­ting go of the old. This is fur­ther ev­i­dence that cell-cell con­tact is nec­es­sary for ef­fi­cient in­fec­tion.

To­mo­gram slices and sur­face rep­re­sen­ta­tions of the vi­ro­log­i­cal synapse be­tween a tar­get cell and an HTLV‑1 in­fected cell from a chron­i­cally HTLV-1-in­fected cell line. (A) The vi­ral synapse is char­ac­ter­ized by a tight mem­brane-mem­brane con­tact with an in­ter-mem­brane spac­ing of about 20 nm. Vi­ral bud­ding sites (black ar­row­heads) and virus par­ti­cles (white ar­row­head) can be de­tected within a synap­tic pocket and at the pe­riph­ery of the synapse. Virus bud­ding at the pe­riph­ery is not seen in nat­u­rally-in­fected CD4+ T cells). (B and D) Slices through the synap­tic cleft and the pe­riph­ery, re­spec­tively, as in­di­cated by the white rec­tan­gles in (A), (C and E) The cor­re­spond­ing sur­face rep­re­sen­ta­tions (yel­low = cell mem­branes; blue = virus en­ve­lope; ma­genta = virus core; red = vi­ral core pro­tein at bud­ding site). Bars = 500 nm (A) and 200 nm (B‑E). Source

How­ever, this may not be the only trick used by this virus, as other re­searchers have re­ported an­other mech­a­nism that could also sup­port ef­fi­cient cell-to-cell trans­fer. They found clumps of HTLV‑1 viri­ons at­tached to the cell sur­face en­cased in a vi­rally-in­duced, car­bo­hy­drate-rich, ex­tra­cel­lu­lar ma­trix (a "vi­ral biofilm"). In their model, these sticky as­sem­blies rapidly ad­here to a tar­get cell upon contact—another way viri­ons could trans­fer with­out ever los­ing their cel­lu­lar con­nec­tion. Ei­ther way, HTLV‑1 trans­fers from cell to cell with­out ex­pos­ing it­self to our im­mune de­fenses. Fur­ther­more, the bud­ded viri­ons are treated like the valu­able prog­eny they are. In­stead of re­ly­ing on ran­dom col­li­sions with a po­ten­tial host cell in the blood­stream, they are ef­fi­ciently de­liv­ered to an ap­pro­pri­ate doorstep.

I re­cently blogged about the tac­tics used by poxviruses, and now here's an­other ex­am­ple where a virus not only es­capes de­struc­tion but does so by bor­row­ing a trick from our im­mune sys­tem. Do these sto­ries of sub­ver­sion —and there are others—leave you a tad dis­ap­pointed in our im­mune sys­tem? Could be. Or per­haps, like me, you are even more in awe of its ca­pa­bil­i­ties, given the chal­lenges pre­sented by these in­ge­nious viruses.

 

Ref­er­ences

Igakura T (2003). Spread of HTLV‑I Be­tween Lym­pho­cytes by Virus-In­duced Po­lar­iza­tion of the Cy­toskele­ton Sci­ence, 299 (5613), 1713−1716. DOI 10.1126/science.1080115

Ma­jorovits E, Ne­jmed­dine M, Tanaka Y, Tay­lor GP, Fuller SD, Bang­ham CR (2008). Hu­man T‑Lymphotropic Virus‑1 Vi­su­al­ized at the Vi­ro­log­i­cal Synapse by Elec­tron To­mog­ra­phy. PloS One, 3 (5). PMID 18509526

 

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