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Biology subjects

Fitzpatrick, A. W. P.

Publications and source records attributed to Fitzpatrick, A. W. P..

3 recordsLinked to original sources

Amyloid-mediated RNA uptake by sperm for embryonic delivery

Seminal fluid RNA is essential for embryonic development, but the mechanism by which extracellular RNA is transferred from seminal fluid to sperm remains unclear. Here, we identify a role for functional amyloid fibrils in seminal fluid that bind and traffic RNA to mammalian sperm and, upon fertilization, the zygote. We show that highly cationic peptides in seminal fluid phase separate with RNA to form amyloid fibrils. Cryo-electron tomography reveals that these amyloid fibrils are internalized by sperm. Furthermore, biophysical and in vitro fertilization experiments show that amyloid-bound RNA reaches the zygote where molecular chaperones control release of RNA for translation. Our work uncovers a mechanism for RNA trafficking from seminal fluid to the zygote, establishing amyloid fibrils as potential tools for RNA delivery during fertilization.

biophysics↗

Pulsed-laser lensing for phase modulation in electron microscopy

Phase contrast electron microscopy is fundamental for visualizing unstained biological specimens. Advances in electron detection have not yet overcome the low contrast caused by weak scattering. Here, we demonstrate that an orthogonal pulsed laser-electron beam interaction produces a pronounced peak phase shift of 430 radians through ponderomotive defocusing, leading to a maximum angular deflection of 45 {micro}rad. Experiments encompassing a variety of probe pulse energies and pump positions verified the properties of the electron pulses in a range of pulse durations from 5.8 {+/-} 1.9 ps to 13.4 {+/-} 0.9 ps and a width of 15.0 {+/-} 2.6 {micro}m at the interaction region. The stability of the beam was also tested across 10 hours of cumulative acquisition time, with only small variations in laboratory conditions resulting in a gradually shifting baseline measurement. Pulsed laser lensing of the electron beam offers the potential for refinement in phase shift and electron beam shaping with careful consideration to the overlap between laser and electron pulses. Calculations of phase shifts across a wide experimental envelope show that poorly chosen laser parameters can generate large incoherent distributions at both 30 keV and 300 keV. Thus, a delicate balance between laser and electron widths and pulse durations must be struck to adequately achieve uniform phase shifts, particularly when singling out specific beamlets in the back-focal-plane.

biophysics↗

Development of an ultrafast pulsed ponderomotive phase plate for cryo-electron tomography

Cryo-electron tomography (cryo-ET) is a powerful modality for resolving cellular structures in their native state. While single-particle cryo-electron microscopy (cryo-EM) excels in determining protein structures purified from recombinant or endogenous sources, cryo-ET suffers from low contrast in crowded cellular milieux. A novel experimental approach to enhance contrast in cryo-ET is to manipulate the phase of scattered pulsed electrons using ultrafast pulsed photons. Here, we outline the experimental design of a proof-of-concept electron microscope and demonstrate synchronization between electron packets and laser pulses. Further, we show ultrabright photoemission of electrons from an alloy field emission tip using femtosecond ultraviolet pulses. These experiments pave the way towards exploring the utility of the ponderomotive effect using pulsed radiation to increase phase contrast in cryo-ET of subcellular protein complexes in situ, thus advancing the field of cell biology.

biophysics↗